Overview

About Future Processing

We are a tech strategy advisor and tech delivery partner with 25+ years of experience. With our consulting mindset and domain expertise in insurance, finance, media, energy & utilities, we are obsessed with transforming your business ambitions into measurable results. We proceed according to unique, AI-enabled advisory & delivery framework grounded in technological heritage, AI roots and continuously optimised to deliver faster.

We design our solutions on the basis of clients’ technology foundations and data infrastructure with high quality, governance and compliance standards to scale safely. We can modernise even complex, legacy systems and operate in regulated industries.

Our competences and value-added services are tailored to solve clients' key business challenges.

  • AI & Automation - Transform into an AI-boosted business. Discover how our services will cut costs, improve productivity, test your ideas, and maximise ROI.
  • Data Science & Engineering - Enrich your data-driven operations, unlock insights, and drive efficiency with modern data science and engineering solutions.
  • Infrastructure & Security - Design and manage resilient infrastructure while strengthening your security posture, including support for regulatory requirements.


We assist clients with AI & ML, Cloud, Consulting, Cybersecurity, Data Solutions, Digital Product, and Software Development.

Get to know us better here: www.future-processing.com

What clients say

Review Analytics of Future Processing

Every review is verified through Goodfirms before it's published.

4.925 Verified Reviews
Quality5.0
Schedule & Timing4.9
Communication4.9
Overall4.8
Review Summary
Summarized from 25 verified reviews · Updated August 2026
Clients consistently praise Future Processing for delivering high-quality development and technical solutions with strong team integration, agile execution, and reliable project governance. The company stands out for seamless collaboration with internal teams, quick developer onboarding, and proactive communication throughout projects. Security expertise, cost efficiency, and the ability to handle complex requirements while maintaining transparency and meeting timelines are frequently highlighted. Clients describe the team as flexible, professional, and genuinely invested in understanding their specific needs and business outcomes.
✦ AI-generated summary. May not reflect every review.
Detailed Reviews of Future Processing
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AnonymousVerified Review
Posted on Jan 8, 2026

“Future Processing delivered dependable development support and strong project governance, enabling timely and high-quality delivery.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
Software Development

The medicine information publisher engaged Future Processing to augment its internal team with skilled developers for an Azure-based application. The additional resources played a critical role in building the solution within the expected timeframe. Throughout the engagement, Future Processing demonstrated disciplined project management practices, maintaining a transparent and predictable workflow. Communication was clear, progress was consistently tracked, and quality assurance standards were notably high. Their structured approach ensured the solution met both technical and business expectations without disruption.

Dario Brenni, Web Services Manager at OGL Computer Services Group LimitedVerified Review
Posted on Jan 8, 2026

“Future Processing delivered reliable Magento expertise and flexible development support that consistently met project expectations.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
Software Development

The software solutions company partnered with Future Processing to strengthen its development capacity with Magento-focused resources. The team handled backend development tasks and conducted quality control testing for approximately 20 client websites. Throughout the engagement, Future Processing demonstrated efficiency, technical competence, and adaptability. They managed ongoing tasks using Jira and GitHub, ensuring transparency and smooth collaboration. As requirements evolved, the team remained flexible and responsive, adjusting priorities without disrupting delivery timelines. Overall, the engagement progressed smoothly and met the client’s operational needs.

Martyn Pearson, Head of Software Engineering at Ito WorldVerified Review
Posted on Jan 8, 2026

“Future Processing delivered adaptable, high-quality developers who integrated quickly and consistently met project expectations.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
Other Services

The transportation data collection company engaged Future Processing to strengthen their internal team through staff augmentation. The assigned developers supported several ongoing initiatives, primarily working with Java and Angular technologies. They onboarded rapidly, understood the project requirements, and began contributing meaningful value in a short time. The client was pleased with both the technical output and the professionalism of the developers, noting that deliverables consistently met expectations. Their ability to align with the company’s workflows and culture further reinforced the success of the engagement.

AnonymousVerified Review
Posted on Jan 8, 2026

“Future Processing delivered a well-built MVP aligned with requirements and budget, supported by a highly valuable discovery process.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
Other Services

Future Processing partnered with the startup to design and develop an MVP that could intelligently align customer profiles with applicable banking rules, regulations, and interest rates. The product was delivered according to the defined requirements and met the client’s functional expectations. While the project timeline experienced some delays, the team demonstrated flexibility and commitment by working additional days without exceeding the agreed budget. The client particularly valued the discovery workshop, which helped clarify requirements early and contributed to a more structured and informed development process.

Avril Chester, Founder at Cancer CentralVerified Review
Posted on Jan 8, 2026

“Future Processing exceeded expectations by delivering thoughtful, high-quality UX and frontend solutions tailored to the nonprofit’s mission.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
Other Services

Future Processing collaborated closely with the nonprofit to design and develop a user-focused frontend experience. Leveraging Figma for UX design and React for development, the team delivered a polished and intuitive interface that resonated strongly with stakeholders. Their work received very positive feedback, and live testers were particularly impressed with the usability and clarity of the platform. Beyond execution, the team invested time in understanding the client’s industry, goals, and audience, which translated into a solution that aligned well with the organization’s purpose.

Angelo Santoro, Head of Software Delivery at InterparkingVerified Review
Posted on Jan 8, 2026

“Future Processing delivers dependable, high-quality engineering talent that integrates seamlessly into internal teams.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
IT Services

Future Processing has augmented the client’s internal team with skilled engineers responsible for a wide range of tasks, including bug fixing, API rewriting, data gathering, application development, cookies management, and analytics implementation. The engineers quickly integrated into the client’s workflows and operated as an extension of the in-house team. Their technical expertise, professionalism, and adaptability enabled the client to move projects forward efficiently and meet delivery goals. Future Processing has consistently demonstrated flexibility by providing specialized resources as project needs evolve.

Marc Hegen, CTO at 21.finance AGVerified Review
Posted on Jan 8, 2026

“Future Processing consistently delivers high-quality solutions while managing complex requirements with agility and reliability.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
Software DevelopmentBlockchain Development

Future Processing has been responsible for multiple critical aspects of the client’s trading platform, ranging from requirement engineering to smart contract development, software design, and QA. Throughout the engagement, the team successfully met all major project milestones and delivered outputs that aligned with the client’s expectations. Their agile project management approach enabled them to adapt quickly to evolving needs and handle challenging situations effectively. The collaboration developed into a trustworthy partnership, supported by clear communication, strong technical expertise, and a solutions-oriented mindset.

Hardeep Nagi, CTO at Yordex LtdVerified Review
Posted on Jan 8, 2026

“Future Processing delivered thorough and timely penetration testing that significantly strengthened the client’s API security.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
Testing Services

Future Processing performed an in-depth penetration testing engagement covering API endpoint security, data security, and business logic testing. Their assessment uncovered several vulnerabilities, enabling the client to implement targeted remediation measures. As a result, the overall security posture and performance of the APIs improved. The team worked efficiently, met all deadlines, and tailored their approach to the client’s specific requirements. Their ability to provide custom solutions while maintaining a high standard of delivery contributed to a smooth and effective engagement.

Nik Louch, Deputy Director of Academic Tech at Academic Publishing CoVerified Review
Posted on Jan 8, 2026

“Future Processing delivered high-quality development support while integrating seamlessly with the internal team to drive successful digital product outcomes.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
Software Development

Future Processing augmented the client’s in-house team with a multidisciplinary group of experts, including software architects, developers, DevOps professionals, and Scrum Masters. Their team played a key role in designing and developing customer-facing digital products while aligning closely with the client’s workflows and delivery standards. Collaboration was smooth and effective, with strong team dynamics that enabled consistent progress and knowledge sharing. The quality of both the software and the working relationship received positive internal feedback. Additionally, staff continuity was well managed, ensuring stability throughout the engagement.

Maurice Suter, Head of Digital Operations at Temporary Staffing CompanyVerified Review
Posted on Jan 8, 2026

“Future Processing enabled a rapid and successful digital transformation through agile execution, strong collaboration, and modern cloud-based technologies.”

Overall rating5.0
Quality5.0
Communication5.0
Schedule & Timing5.0
Software Development

Future Processing worked closely with the client to completely redesign and modernize their operational processes, delivering measurable improvements within a short time to market. The team led a comprehensive digital transformation initiative, migrating legacy systems to a scalable microservices ecosystem while leveraging .NET and Azure. Automated testing was introduced to improve reliability and speed of delivery. Throughout the engagement, Future Processing maintained an agile and proactive approach, adapting to evolving requirements and ensuring continuous alignment through frequent communication.

Focus

Service Focus of Future Processing

How the team's effort is distributed across services.

30%15%15%10%10%10%10%

Industries Focus

25%15%15%10%10%10%5%5%5%

Client Focus

Small Business35%
Medium Business50%
Large Business15%

The Positioning

AI Tools & Purpose

The stack the team uses to move faster.

GitHub Copilot
confidential
Selected Work

Client Portfolio of Future Processing

Where their work concentrates - by industry, budget, and timeline.

Project Industry

Other Industries27%
Fintech9%
Oil & Energy9%
Nonprofit9%
Healthcare9%
Transportation & Logistics9%
Media18%
Other9%
Major industry focus
Other Industries

Project Cost

Not Disclosed100%
Common project cost
Not Disclosed

Project Timeline

51 to 100 Weeks100%
Typical timeline
51 to 100 Weeks

Portfolios: 11

Executive Interview

Executive Interview of Future Processing

Michał Sztanga
Michał Sztanga
CEO
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Please introduce your company and describe your role within the organization.

Future Processing is a tech strategy advisor and tech delivery partner with more than 25 years of experience. With our consulting mindset and domain expertise in insurance, finance, media, energy and utilities, we are obsessed with transforming your business ambitions into measurable results.
We work through a unique, AI-enabled advisory and delivery framework grounded in technological heritage, AI roots and continuous optimisation. We design our solutions on the basis of clients’ technology foundations and data infrastructure, with high quality, governance and compliance standards so they can scale safely. We can modernise even complex legacy systems and operate in highly regulated industries.
As CEO, my role is to set the strategic direction for Future Processing and make sure that our AI transformation has a clear business outcome, both in client projects and inside the company. That means deciding how we develop our offer, where we invest, and how we combine our capabilities with market trends and clients' business challenges. The delivery partner is responsible for execution; my responsibility is to keep the company focused on the problems worth solving and to ensure that areas such as AI, data and modernisation translate into measurable value, not into technology activity for its own sake.

What inspired the founding of your company, and what is the story behind its inception?

Future Processing was founded around engineering quality and long-term responsibility for client systems. From early on, we worked with technologies that today would be described as big data, machine learning, and image recognition algorithms, applying them to practical engineering challenges. Facelog, a facial recognition system based on image processing, was important because it helped build our capabilities in computer vision and algorithmic engineering. Adaptive Vision Studio later showed the commercial side of that experience as a product used in industrial environments and recognised as Product of the Year by Control Engineering Poland. That history still matters because it shaped our approach to AI: supported by our R&D practice, we develop accelerators and apply AI where it creates measurable value, focusing on proven delivery rather than experimentation or buzzwords.

What are the core values and principles that drive your company's culture, and how do you ensure alignment with these values across your team?

Our culture is defined less by slogans than by how we deliver work for clients. We are strongly focused on business value. Technology is never the objective in itself; it is a tool to improve how our clients operate, increase efficiency, and support growth. This is particularly important in AI implementation, where activity without clear business impact is one of the most common failure patterns. In practice, this means three things. First, we stay accountable for outcomes, not outputs. Building a system is not enough; it has to create measurable value in the client's environment. Second, we use technology to optimise business processes, not to experiment for its own sake. That is why readiness, data quality, and integration with existing systems are treated as core parts of delivery. Third, we focus on enabling growth on the client side. Whether the goal is operational efficiency or increased revenue, our work is structured around improving the client's business performance, not delivering isolated features. Internally, we reinforce this through the way we work with AI. The shift from individual usage to team-based collaboration, which has grown significantly across the organisation, shows that AI is now embedded in delivery processes rather than treated as an add-on.

Can you highlight some of the key achievements or milestones your company has accomplished since its inception?

For me, the most important measure of success is the longevity of client relationships. Many clients stay with us for years and expand the scope of cooperation over time. This is supported by consistent client feedback, including NPS-based surveys, which we use as an operating metric rather than a marketing asset. Our latest Net Promoter Score is 74 on a scale from -100 to +100, a strong result for the IT services sector. In terms of capability development, what matters most is continuity. I would describe our milestones through scale, continuity, and recognition rather than through NPS alone. Over 25 years, Future Processing has grown into a team of around 1,000 people, served clients internationally, and built experience across industries where technology is close to critical operations. Long-term client relationships remain an important signal, but the stronger story is that the company has repeatedly increased the scale and maturity of its work: from early engineering and R&D projects, through global delivery relationships, to current AI-enabled transformation. Internally, the 2026 AI adoption study shows that AI is becoming part of everyday work, with the FP AI Adoption Index doubling YoY. This is supported by external validation, including Microsoft Partner Solution Designation: Data & AI, public client work and industry recognition.

Could you explain your company's business model? Do you primarily operate with an in-house team or utilize third-party vendors/outsourcing?

Future Processing is a tech strategy advisor and tech delivery partner. Our business model is outcome-based: we start by defining the business result the client wants to achieve, the success metrics that will prove it, and the level of consulting, engineering, and governance needed to get there. The model is not built around a predefined team setup or billing structure. Depending on the challenge, cooperation may begin with assessment or discovery, move into advisory and engineering work, or take the form of a fixed-scope, subscription, or value-based engagement. What stays constant is commercial and delivery accountability aligned with measurable outcomes: clear scope, transparent progress, quality standards, risk management, and responsibility for business value.

How does your company differentiate itself from competitors in the industry?

Our differentiation is not access to engineers. It is the way we turn business goals into measurable outcomes. We combine 25+ years of delivery know-how, domain expertise in insurance, finance, media, and energy & utilities, experience in SDLC automation, an AI practice, and our own accelerators. Before we build, we check whether there is a real business case, whether the organisation is ready, whether the data foundation can support the use case, and whether the solution can scale safely. This is also how we work internally through our AI Maturity Scan, which tracks adoption, use intensity, collaboration, readiness, impact, and business value. The latest results show a clear move from individual experimentation to more systematic, team-based AI use. That matters because many AI initiatives fail when they need to move beyond a promising demo. We focus on decision quality, data readiness, governance, implementation, and adoption so that AI can scale into repeatable business impact.

How would you describe the dynamics within your team, and how do you foster collaboration and teamwork to achieve common goals?

We are evolving our delivery model around T-shaped experts: people who keep deep expertise in their core discipline, but also understand the client's business context, AI, UX, project ownership, and the impact of technology decisions. This matters because AI-enabled delivery is no longer about handing work between narrow specialisms. Teams need to identify the right problem, validate data and user context, apply AI safely, and stay accountable for the outcome. The 2026 AI adoption data supports this direction: Team AI Collaboration grew by 55.2% year on year, and the adoption funnel improved from 55% to 75%, showing that AI acceptance is turning into shared team practice. That fits the Delivery 2.0 direction: broader responsibility, stronger consulting mindset, and the same deep engineering expertise where it matters.

What measures do you take to support the professional development and growth of your employees? Do you offer training programs or opportunities for skill enhancement?

We invest in professional development as part of delivering quality, not as a benefit on the side. FP Academy - our internal training & self-development unit - and our learning function give people access to structured development paths, online and offline training, learning budgets, and internal knowledge hubs. In AI, this is supported by access to tools, clear rules of use, and practical spaces for exchanging experience, including initiatives such as 'AI coffee' (a simple, non-formal way to exchange new insights and lessons learned). We also develop capabilities with partners such as Microsoft or AWS, which support client work. The aim is to keep teams current and responsible: people should understand not only the tools, but also when to use them, how to verify outputs, and how to bring AI into delivery safely. The 2026 AI adoption study confirms that this is becoming a real organisational capability: active tool use is broad, knowledge of AI tools has grown, and most respondents say they verify AI outputs often or always.

Could you share a notable success story or case study that exemplifies the impact your company has had on a client's business?

A good example is our work with Verifi, a UK legal-tech company building an AI-assisted document verification platform. The challenge was concrete: legal teams need to review long, high-stakes documents under time pressure, and manual checking is slow, repetitive, and difficult to keep consistent. We started with discovery workshops and delivered a working demo in three months, using machine learning to help lawyers annotate and verify documents. The platform now supports auto-annotation, semantic search, version control, and human-in-the-loop review. The business impact is clear: initial annotation can be completed in minutes rather than hours, legal teams can save up to 75% of document review time, and Verifi was able to move a complex legal-tech product from idea to production.

What industries do you primarily cater to, and do you have a significant percentage of repeat clients? If so, what is the ratio of repeat clients?

We specialise in insurance, finance, media, and energy & utilities - domains where systems sit close to critical operations and where reliability, compliance, data quality, and scalability matter. In these sectors, our strongest proof is the scale and continuity of work rather than a generic satisfaction metric. We support large, complex organisations in long-running relationships, and our public case studies show impact in business outcomes such as faster delivery, lower operating costs, modernised platforms and improved decision-making. Repeat collaboration is therefore not a standalone statistic; it is a consequence of domain understanding, delivery accountability, and the ability to keep improving critical systems over time.

What initiatives does your company undertake to foster innovation and stay at the forefront of industry trends? Do you invest in research and development projects?

Innovation at Future Processing is not a side lab. It is built into how we assess opportunities and deliver change. Our AI practice and R&D work develop accelerators that help teams move faster in discovery, data assessment, prototyping, SDLC automation and delivery, but we apply them only where there is a clear business case. We combine deep engineering skills with business understanding, AI awareness, UX perspective, and ownership for the result. Internally, we validate this through measured AI adoption and responsible use, not through declarations. That is the maturity we want to bring to clients: innovation that improves processes, reduces cost, supports decision-making, and scales safely.

Please share some of the most sought-after services that clients approach your company for.

Clients increasingly come to us when they need to scale the business, optimise operations or find the real value behind an AI initiative. The service itself is rarely the starting point. The starting point is usually a pressure point: rising costs, slow processes, fragmented data, legacy platforms, or uncertainty about whether AI will actually improve the business. Our role is to help them decide what is worth pursuing, prepare the foundations, and introduce the change in a way the organisation can absorb. That can involve modernisation, cloud and data work, AI implementation, process optimisation or ongoing delivery ownership, but the common denominator is business value. We focus on efficiency, decision quality, time to market, and scalability, with a clear operating model for change rather than technology activity disconnected from outcomes.

How do you build and maintain strong relationships with your clients, and what mechanisms do you have in place for gathering and acting upon client feedback?

Client relationships are maintained through delivery discipline, not through satisfaction surveys alone. At the start, we align on clear scope, decision ownership, success metrics, and how progress will be reviewed. During delivery, we ensure transparency through QBRs, working demo sessions, and close contact with the client's project team. Internally, we rely on our own set of standards and frameworks built on years of experience and strong technical leadership. This gives feedback a practical role: it is used to adjust team setup, governance, and delivery approach before issues escalate. NPS can remain one input, but the real basis of the relationship is predictable delivery, transparency, and shared ownership of outcomes.

How has your company adapted to changes and challenges in the business landscape, and what strategies have you employed to ensure resilience and sustainability?

The biggest change in the business landscape in recent years has been the shift from technology adoption to accountability for outcomes, especially in AI. Clients are no longer asking only whether a model can be built; they are asking whether it improves a process, reduces cost, supports growth, or helps the organisation scale. Our response has been to embed consulting more deeply into delivery. We challenge assumptions, define success metrics, and help decide which initiatives are worth pursuing before implementation starts. This consulting mindset is supported by delivery frameworks that make value measurable, including clear scope, success metrics, project health indicators, and structured governance. Internally, we apply the same discipline to AI: we measure adoption, use intensity, collaboration, readiness, impact, value, and success, rather than treating AI transformation as a declaration. This is also how we think about resilience. Transformation is not a one-off project; systems, capabilities, and operating models have to evolve continuously under real constraints.
Sustainability follows the same logic. We manage long-term responsibilities toward clients, employees, suppliers, communities and the environment through governance, transparent ESG reporting and external validation such as EcoVadis, Hellios and FSQS. In practice, resilience and sustainability are connected: both require measurable systems, responsible decision-making and consistency between what we say and how we operate.

What payment structure do you typically follow when billing clients? Is it Pay per Feature, Fixed Cost, or Pay per Milestone (phases, months, versions, etc.)?

The commercial model is selected after we understand the objective, uncertainty, delivery risk, and level of ownership required. In practice, this can mean an assessment or discovery phase, a fixed-scope engagement where the work is well defined, a subscription model for ongoing access to capability or support, or a value-based model where the setup is connected more directly to business outcomes. We can also phase work through milestones when that gives both sides better control over scope and investment. The point is not to force one pricing structure, but to choose the model that gives both sides clarity and keeps delivery accountability aligned with value.

Do you accept projects that meet your basic budget requirements? If yes, what is the minimum budget requirement? If no, what is the minimum budget you have worked with in the past?

We assess potential projects case by case rather than applying a public minimum budget. The starting point is fit: whether the problem is business-critical, whether there is enough scope to create measurable value, and whether Future Processing can take meaningful responsibility for the result. For early-stage initiatives, cooperation may begin with assessment, discovery, audit, or feasibility work before moving into implementation. That lets both sides check business fit, risks, data readiness, and the level of ownership needed before committing to a larger delivery model. We are usually not the best fit for isolated, very short-term tasks, because our strongest value appears when we can combine consulting, engineering, and delivery ownership over time.

Can you provide an overview of the price range (minimum and maximum) of the projects your company worked on in 2025?

Project value varies widely depending on scope, risk, team composition, and duration, so we do not present a universal minimum and maximum range as a meaningful indicator. In 2025, as in previous years, our work covered both focused advisory and discovery phases and larger, longer-running delivery and modernisation programmes. We normally qualify opportunities by strategic fit, expected business value, delivery complexity, and the potential for a durable partnership. This is a more useful lens than a standalone price range, because two projects with similar budgets can require very different levels of responsibility, governance and specialist capability.

What technological capabilities does your company possess, and are there any ongoing or planned investments in technology infrastructure or tools to enhance your services?

Our technological capabilities are built around the full environment needed for business AI to work. We start with foundations: infrastructure choices such as cloud, on-premise or sovereign setups; security and compliance requirements specific to the domain; and the quality, consistency, modelling and structure of data. Only then do we move into AI implementation, process optimisation and scaling. This matters because AI value depends on the whole system around it. A model can be strong, but if the data layer is weak, governance is unclear, or the process cannot absorb the change, the business outcome will not appear. Our role is to connect infrastructure, data, compliance, AI implementation and human oversight so solutions can optimise operations and scale safely.

Where do you envision your company in the next 10 years? What are your long-term goals and aspirations for growth and development?

Over the next 10 years, I see Future Processing becoming an even stronger consulting partner and AI enablement company for organisations that need technology to support growth. AI will be central to that direction, but only when it is tied to clear business value and responsible implementation. For clients, the key priorities will be scalability, efficiency, time to market, deep domain knowledge, and a clear operating model for change. We will keep building capability in insurance, finance, media and energy & utilities, while strengthening data, cloud, security, process optimisation and change adoption. Adaptability matters, but the real goal is to help clients build organisations that can scale technology change safely and repeatedly.

Where we are

Locations (4)

Offices where Future Processing operates.

Headquarter
Poland

Poland

Bojkowska 37a
Gliwice, Silesian Voivodeship 44190
+44 845 805 7479
United Kingdom

United Kingdom

70 Gracechurch Street
London, England EC3V 0HR
+44 845 805 7479
Germany

Germany

Erkrather Strasse 401
Dusseldorf, North Rhine-Westphalia D40231
+48 32 461 2300
United States

United States

7700 Windrose
Plano, Texas 75024
+1469 501 1179