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Manager, Research Engineering (Foundational Research)
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Thomson Reuters

Manager, Research Engineering (Foundational Research)

Hybrid London, United Kingdom (hybrid) Full Time Senior
Posted 18 days ago
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Job Details

Foundational Research is the dedicated core Machine Learning research division of Thomson Reuters. We focus on advanced algorithms and training techniques for Large Language Models (LLMs) and Data-Centric Machine Learning.

Watch this video to learn more about Thomson Reuters

While our Research Scientists push the boundaries of what models can do, the Research Engineering team defines how we build, train, and scale them. We are looking for an Engineering Manager who can lead a team of high-performing engineers to build the "nervous system" of our lab, designing the distributed training infrastructure, LLMOps pipelines, and experimental frameworks that power our state-of-the-art research.

About the Role:

As the Manager of Research Engineering, you will sit at the critical intersection of cutting-edge academic research and robust software engineering. You will lead the team responsible for turning experimental code into scalable assets and ensuring our researchers have the compute and tooling required to compete with the world’s top AI labs.

  • Engineering Leadership: Manage, mentor, and grow a team of Research Engineers. You will foster a culture of engineering rigor (code quality, testing, CI/CD) within a fast-paced, experimental research environment.
  • Infrastructure & LLMOps Strategy: Own the technical strategy for our LLM training and inference infrastructure. This includes managing distributed compute clusters (LambdaLabs/AWS), orchestration platforms (e.g., ClearML, Kubernetes), and data pipelines.
  • Vendor & Governance Management: Lead the evaluation and onboarding of external technology vendors. You will act as the primary liaison with Sourcing, Procurement, Risk, and Privacy teams to ensure our tooling infrastructure is compliant, secure, and procured efficiently, unblocking the research team from administrative overhead.
  • Bridge Research & Production: Act as the primary translator between the Foundational Research team and the wider Platform/Engineering organizations. You will ensure that research innovations are architected in a way that allows them to be successfully handed off to production teams.
  • Product-Minded Engineering: Drive a product-oriented mindset within the research engineering team, ensuring that infrastructure, tooling, and experimental frameworks are designed not just for technical excellence but with clear user outcomes in mind. Champion practices like defining success metrics for internal platforms, gathering feedback from product partners, and prioritizing work based on impact to downstream product value.
  • Operational Rigor: Remove ambiguity for your team by translating high-level research goals into concrete engineering roadmaps. You will implement observability, alerting, and resource management strategies to ensure efficient use of our massive compute budget.
  • Hands-on Contribution: While primarily a leader, you are willing to roll up your sleeves to review code, debug distributed training failures, and architect complex system integrations.

About You

You are not just a manager; you are a builder who understands the unique challenges of Deep Learning infrastructure. You bring a product-oriented lens to engineering — you've led teams that didn't just ship features but owned outcomes, defined success criteria, and iterated based on user feedback, whether those users were internal researchers or external customers.

Required Qualifications:

  • Education: BSc, MSc, or PhD in Computer Science, Software Engineering, or a related field.
  • Experience: 7+ years of software engineering experience, with at least 3+ years leading or managing engineering teams.
  • Product-Oriented Leadership: Demonstrated experience leading engineering efforts with a product mindset, defining roadmaps tied to user/business outcomes, working cross-functionally with product and business stakeholders, and making build-vs-buy decisions grounded in impact rather than purely technical preference.
  • Technical Expertise:
    • Deep proficiency in Python and modern software development practices.
    • Hands-on experience with Distributed Training infrastructure (Multi-node GPU training, Kubernetes, vLLM).
    • Familiarity with Deep Learning frameworks (PyTorch).
    • Experience with MLOps tools and experiment tracking (e.g., ClearML, MLFlow, Weights & Biases).
  • Research Fluency: Ability to read technical research papers and translate them into engineering requirements. You don't need to write the paper, but you need to understand the architecture required to support it.
  • Operational Mindset: Experience managing cloud resources (AWS/Azure/GCP) and optimizing for cost/performance.

Preferred Qualifications:

  • Experience working in a Research Lab or "0-to-1" innovation environment.
  • Experience owning the end-to-end lifecycle of an internal developer platform or ML tooling product, including defining adoption metrics and iterating based on user research.
  • Background in Platform Engineering.
  • Experience contributing to open-source LLM or NLP libraries.

As part of the application process, please include a brief written blurb (300–500 words) describing a sufficiently complex or technically interesting project that you have led or played a significant leadership role in delivering. This should be a project that spanned at least three to six months of active development — not a weekend hack or a single-sprint feature. In your blurb, outline the problem you were solving, the high-level architecture or approach your team took, the key trade-offs or compromises you navigated, and the outcome (successful or otherwise). We are equally interested in projects that didn't go as planned — what matters is your ability to articulate the complexity, the decisions you made, and what you learned. This blurb will serve as the basis for a deep-dive discussion during the interview process, so choose a project you are comfortable exploring in detail. There is no need to share proprietary or confidential information; a high-level description with anonymized details is perfectly fine.

#LI-FP3

What’s in it For You?

  • Hybrid Work Model: We’ve adopted a flexible hybrid working environment (2-3 days a week in the office depending on the role) for our office-based roles while delivering a seamless experience that is digitally and physically connected.

  • Flexibility & Work-Life Balance: Flex My Way is a set of supportive workplace policies designed to help manage personal and professional responsibilities, whether caring for family, giving back to the community, or finding time to refresh and reset. This builds upon our flexible work arrangements, including work from anywhere for up to 8 weeks per year, empowering employees to achieve a better work-life balance.

  • Career Development and Growth: By fostering a culture of continuous learning and skill development, we prepare our talent to tackle tomorrow’s challenges and deliver real-world solutions. Our Grow My Way programming and skills-first approach ensures you have the tools and knowledge to grow, lead, and thrive in an AI-enabled future.

  • Industry Competitive Benefits: We offer comprehensive benefit plans to include flexible vacation, two company-wide Mental Health Days off, access to the Headspace app, retirement savings, tuition reimbursement, employee incentive programs, and resources for mental, physical, and financial wellbeing.

  • Culture: Globally recognized, award-winning reputation for inclusion and belonging, flexibility, work-life balance, and more. We live by our values: Obsess over our Customers, Compete to Win, Challenge (Y)our Thinking, Act Fast / Learn Fast, and Stronger Together.

  • Social Impact: Make an impact in your community with our Social Impact Institute. We offer employees two paid volunteer days off annually and opportunities to get involved with pro-bono consulting projects and Environmental, Social, and Governance (ESG) initiatives.

  • Making a Real-World Impact: We are one of the few companies globally that helps its customers pursue justice, truth, and transparency. Together, with the professionals and institutions we serve, we help uphold the rule of law, turn the wheels of commerce, catch bad actors, report the facts, and provide trusted, unbiased information to people all over the world.

About Us

Thomson Reuters informs the way forward by bringing together the trusted content and technology that people and organizations need to make the right decisions. We serve professionals across legal, tax, accounting, compliance, government, and media. Our products combine highly specialized software and insights to empower professionals with the data, intelligence, and solutions needed to make informed decisions, and to help institutions in their pursuit of justice, truth, and transparency. Reuters, part of Thomson Reuters, is a world leading provider of trusted journalism and news.

We are powered by the talents of 26,000 employees across more than 70 countries, where everyone has a chance to contribute and grow professionally in flexible work environments. At a time when objectivity, accuracy, fairness, and transparency are under attack, we consider it our duty to pursue them. Sound exciting? Join us and help shape the industries that move society forward.

As a global business, we rely on the unique backgrounds, perspectives, and experiences of all employees to deliver on our business goals. To ensure we can do that, we seek talented, qualified employees in all our operations around the world regardless of race, color, sex/gender, including pregnancy, gender identity and expression, national origin, religion, sexual orientation, disability, age, marital status, citizen status, veteran status, or any other protected classification under applicable law. Thomson Reuters is proud to be an Equal Employment Opportunity Employer providing a drug-free workplace.

We also make reasonable accommodations for qualified individuals with disabilities and for sincerely held religious beliefs in accordance with applicable law. More information on requesting an accommodation here.

Learn more on how to protect yourself from fraudulent job postings here.

More information about Thomson Reuters can be found on thomsonreuters.com.

Required Skills
  • Machine Learning
  • Large Language Models (LLMs)
  • LLM Training
  • Post-training techniques
  • Data-centric Machine Learning
  • Evaluation
Company Details
Thomson Reuters
 Toronto, Canada
Work at Thomson Reuters

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