Senior Principal Architect, CTO Office

Posted 2 Days Ago
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London, England, GBR
In-Office
Senior level
Information Technology • Software
The Role
Own architecture and hands-on delivery of high-priority AI initiatives in the CTO Office. Design, build, evaluate, secure, monitor, and operate production agentic and LLM systems, including RAG and Graph RAG. Work across unfamiliar domains and enterprise platforms, brief executives and customers, and establish a small applied AI engineering team through hiring and coaching. The role requires deep software architecture, production AI experience, rapid execution, and technical leadership.
Summary Generated by Built In
Company Description

IFS is a billion-dollar revenue company with 7000+ employees on all continents. Our leading AI technology is the backbone of our award-winning enterprise software solutions, enabling our customers to be their best when it really matters–at the Moment of Service™. Our commitment to internal AI adoption has allowed us to stay at the forefront of technological advancements, ensuring our colleagues can unlock their creativity and productivity, and our solutions are always cutting-edge.

At IFS, we’re flexible, we’re innovative, and we’re focused not only on how we can engage with our customers but on how we can make a real change and have a worldwide impact. We help solve some of society’s greatest challenges, fostering a better future through our agility, collaboration, and trust.

We celebrate diversity and understand our responsibility to reflect the diverse world we work in. We are committed to promoting an inclusive workforce that fully represents the many different cultures, backgrounds, and viewpoints of our customers, our partners, and our communities. As a truly international company serving people from around the globe, we realize that our success is tantamount to the respect we have for those different points of view.

By joining our team, you will have the opportunity to be part of a global, diverse environment; you will be joining a winning team with a commitment to sustainability; and a company where we get things done so that you can make a positive impact on the world.

We’re looking for innovative and original thinkers to work in an environment where you can #MakeYourMoment so that we can help others make theirs. With the power of our AI-driven solutions, we empower our team to change the status quo and make a real difference.

If you want to change the status quo, we’ll help you make your moment. Join Team Purple. Join IFS.

Job Description

About IFS and the CTO Office

IFS builds enterprise software for asset-intensive and service industries: ERP, Enterprise Asset Management, and Field Service Management. The CTO Office is an independent unit within Product & Customer with a dual mandate: track what is genuinely happening at the frontier of the industry, and convert it into technology strategy and working software inside IFS. It operates close to the executive team, frontier AI labs, and strategic partners, and it moves faster than a normal product organisation is allowed to.

  • inference workloads 

  • Data foundations: pipelines and lakehouse patterns (Microsoft Fabric/OneLake, Databricks, or equivalents), streaming and event-driven integration where the problem demands it 

  • Enterprise integration: API design and consumption at scale, including REST, OData, GraphQL, and webhook/event patterns into ERP-class systems 

What sets candidates apart 

  • Classical ML depth alongside GenAI: forecasting, anomaly detection, predicThe role 

  • This is a hands-on architect role that grows into a player-coach role. You will start as the senior technical individual contributor in the CTO Office and then hire and lead a small team of engineers built in your image. 

  • The unit takes on whatever matters most at the time. One month that is a production-grade agentic system with a frontier model provider, the next it is an architecture review of a platform under consideration, an internal AI tool the whole company adopts, or a technical escalation from a strategic customer. There is no standing backlog to hide behind. You go in, learn the domain fast, deliver something real in weeks, and hand it over or harden it. 

  • We are explicit about the calibre we are hiring for. The team exists to produce output that would normally take a squad a quarter, in a fraction of the time, at production quality. If that sounds exhausting rather than energising, this is the wrong role. 

What you will do 

  • Own architecture and delivery on the CTO Office's highest-priority technical projects, end to end 

  • Write and review code daily; the role never becomes slideware 

  • Design and ship agentic and LLM-based systems to production standard: retrieval at scale, evals, guardrails, security and identity, monitoring and auditability 

  • Drop into unfamiliar codebases, stacks, and business domains and become dangerous within days 

  • Hire, coach, and set the technical bar for a small team of applied AI engineers 

  • Brief executives and senior customer stakeholders on what you built and what it means commercially 

Qualifications

  What we are looking for 

  • 15+ years building software, with architecture ownership of systems running in production at enterprise scale 

  • Still keyboard-credible: you review PRs, debug agents, and ship. We will verify this in the interview process 

  • Deep, current applied AI capability: production agentic systems, RAG and Graph RAG, MCP, agent runtimes, and fluency across model providers rather than loyalty to one 

  • Eval fluency. You can articulate and build an evaluation strategy for an LLM system. Candidates who cannot are not a fit, regardless of seniority 

  • Evidence of operating AI systems at enterprise scale, not a portfolio of PoCs 

  • Range and speed: a track record of delivering across different domains, stacks, and problem shapes under time pressure 

  • Experience hiring engineers and raising a team's technical standard 

  • Clear written and spoken communication at executive level 

Technical depth expected 

  • We hire for depth per area, not a keyword count. The named tools are examples; strong equivalents are fine. Expect to be tested on the areas below, not asked whether you have heard of them. 

  • Languages: expert-level Python and TypeScript for AI and product work, and the ability to read and contribute to the large enterprise codebases you will drop into (C#/.NET, Java) 

  • Model providers: hands-on production work with at least 2 of Anthropic, OpenAI, Google, and open-weight models (direct APIs or via Azure AI Foundry, Bedrock, Vertex); tool use and function calling, structured outputs, context and token management, prompt architecture 

  • Agentic systems: designing, hosting, and operating autonomous and semi-autonomous agents in production; MCP servers and clients; orchestration frameworks such as LangGraph, Pydantic AI, or provider-native SDKs; sandboxing, permissioning, and human-in-the-loop design 

  • Retrieval and knowledge: RAG and Graph RAG at enterprise scale; vector and hybrid search (pgvector, OpenSearch/Elasticsearch, or dedicated stores) including chunking strategy, reranking, and distributed retrieval; knowledge graphs and entity resolution; Text-to-SQL over complex enterprise schemas 

  • Evals and quality: golden datasets, regression suites, LLM-as-judge patterns, online monitoring of model behaviour; tooling such as RAGAS, promptfoo, Langfuse or LangSmith, or eval harnesses you built yourself 

  • Security, identity, and governance: OAuth2/OIDC, Entra ID and service principals, secrets management; guardrails and content safety; auditability and traceability of agent decisions 

  • Cloud and platform: production Kubernetes and containerisation, infrastructure as code (Terraform or Bicep), CI/CD; deep in at least 1 hyperscaler (Azure preferred given our estate) with working literacy in the others 

  • Observability and operations: OpenTelemetry or equivalent distributed tracing applied to LLM systems, cost and latency engineering, capacity planning for tive maintenance 

  • Industrial, asset-intensive, or enterprise software domain exposure (EAM, ERP, FSM) 

  • Working knowledge of AI governance frameworks such as the EU AI Act and NIST AI RMF 

  • Prior 0-to-1 work: standing up a capability, product, or team from nothing 

How we assess 

A walkthrough of systems you have personally architected and shipped, a technical deep dive including your eval and production-hardening approach, and a working session on a live problem. References will be asked specifically about hands-on contribution, not leadership style. 

Practicalities 

  • Location and working model: Virtual/Hybrid – location dependent 

  • Compensation: Upon discussion 

  • Some international travel 

Additional Information

We embrace flexibility and hybrid work opportunities to support diverse needs and lifestyles, while also valuing inclusive workplace experiences. By fostering a sense of community, we drive innovation, strengthen connections, and nurture belonging. Our commitment ensures you can work in a way that suits you best, while also engaging with colleagues to share ideas and build meaningful relationships.

Skills Required

  • 15+ years building software
  • Architecture ownership of systems running at enterprise production scale
  • Current hands-on applied AI experience with production agentic systems, RAG, Graph RAG, MCP, and agent runtimes
  • Ability to write and review code, debug agents, and ship production systems
  • Experience building and applying evaluation strategies for LLM systems
  • Experience operating AI systems at enterprise scale, beyond proof-of-concept projects
  • Track record delivering across different domains and technology stacks under time pressure
  • Experience hiring engineers and raising a team’s technical standard
  • Clear written and spoken communication at executive level
  • Expert-level Python and TypeScript
  • Ability to read and contribute to C#/.NET and Java enterprise codebases
  • Production experience with at least two major model providers or open-weight models
  • Experience with tool use, function calling, structured outputs, context management, and prompt architecture
  • Production design and operation of autonomous or semi-autonomous agents
  • Experience with MCP servers and clients, orchestration, sandboxing, permissioning, and human-in-the-loop design
  • Enterprise-scale RAG, Graph RAG, vector and hybrid search, reranking, distributed retrieval, knowledge graphs, and entity resolution
  • Experience with Text-to-SQL over complex enterprise schemas
  • Experience with golden datasets, regression suites, LLM-as-judge, and online model monitoring
  • Knowledge of OAuth2/OIDC, Entra ID, service principals, secrets management, guardrails, content safety, and auditability
  • Production Kubernetes, containerization, infrastructure as code, and CI/CD experience
  • Deep expertise in at least one hyperscaler, preferably Azure, with literacy in others
  • Experience with distributed tracing, cost and latency engineering, and capacity planning for LLM systems
  • Industrial, asset-intensive, or enterprise software domain exposure such as EAM, ERP, or FSM
  • Working knowledge of the EU AI Act and NIST AI Risk Management Framework
  • Prior experience standing up a capability, product, or team from nothing

IFS Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about IFS and has not been reviewed or approved by IFS.

  • Retirement Support Retirement support is presented as part of the package in North America through a 401(k) plan and references to pension/defined contribution arrangements in some contexts.
  • Healthcare Strength Healthcare coverage is described as available in some regions, including health, dental, life, and disability insurance offerings.
  • Strong & Reliable Incentives Variable pay elements such as monthly bonuses and profit sharing are described as meaningful in certain roles, with bonuses tied to performance outcomes like reduced downtime.

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The Company
HQ: Linköping
6,788 Employees
Year Founded: 1983

What We Do

IFS develops and delivers enterprise software for companies around the world who manufacture and distribute goods, build and maintain assets, and manage service-focused operations. Within our single platform, our industry specific products are innately connected to a single data model and use embedded digital innovation so that our customers can be their best when it really matters to their customers – at the Moment of Service. The industry expertise of our people and of our growing ecosystem, together with a commitment to deliver value at every single step, has made IFS a recognized leader and the most recommended supplier in our sector. Our team of 5,000 employees every day live our values of agility, trustworthiness and collaboration in how we support our 10,000+ customers. Learn more about how our enterprise software solutions can help your business today at ifs.com. Follow us on Twitter: @ifs Facebook: www.facebook.com/ifsdotcom Instagram: www.instagram.com/ifsdotcom Visit the IFS Blog on technology, innovation and creativity: https://blog.ifs.com/

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