Senior Machine Learning Engineer (Safety)

Posted 6 Days Ago
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London, England, GBR
In-Office
Senior level
Artificial Intelligence • Machine Learning • Big Data Analytics
The Role
Lead the architecture, development, deployment, and scaling of secure, production-grade machine learning systems and AI safety evaluations. The role includes technical scoping, cloud infrastructure design, client advising, cross-functional collaboration, engineering standards, and mentoring. Candidates need strong Python and software engineering expertise, experience with LLM applications, TensorFlow or PyTorch, cloud platforms, cybersecurity, Docker, Kubernetes, and full ML lifecycle operations.
Summary Generated by Built In
Why Faculty?


We established Faculty in 2014 because we thought that AI would be the most important technology of our time. Since then, we’ve worked with over 350 global customers to transform their performance through human-centric AI. You can read about our real-world impact here.

We don’t chase hype cycles. We innovate, build and deploy responsible AI which moves the needle - and we know a thing or two about doing it well. We bring an unparalleled depth of technical, product and delivery expertise to our clients who span government, finance, retail, energy, life sciences and defence.

Our business, and reputation, is growing fast and we’re always on the lookout for individuals who share our intellectual curiosity and desire to build a positive legacy through technology.

AI is an epoch-defining technology, join a company where you’ll be empowered to envision its most powerful applications, and to make them happen.

About the team
 

Our National Security and AI Safety business unit is dedicated to advancing the responsible development and deployment of AI in support of national security and global stability. From strengthening mission-critical capabilities across national security and intelligence, to working with frontier labs to provide robust AI safety red teaming and evaluation, we work at the frontier of high-stakes, high-impact missions.
We understand that powerful AI systems bring both transformative opportunities and complex risks and we are proud to partner with Government and the biggest tech organisations in the world to ensure AI is not just transformative but is also secure, trustworthy and safe for all.

About the role

As a Senior Machine Learning Engineer, we’ll look to you to lead development and deployment of cutting-edge AI systems for our diverse clients. You’ll design, build, and deploy scalable, production-grade ML software and infrastructure that meets rigorous operational and ethical standards.

You will lead the bridge between AI research and real-world impact by architecting scalable, production-grade machine learning systems. Partnering directly with clients and cross-functional teams, you will drive technical strategy, mentor teams on best practices, and collaborate with Frontier Labs to define and reinforce our industry leadership in practical, high-stakes AI safety.

What you'll be doing:

  • Leading technical scoping and architectural decisions for high-impact ML systems and capability testing of Frontier AI models

  • Designing and building production-grade ML software, tools, and scalable infrastructure

  • Defining and implementing best practices and standards for deploying machine learning at scale across the business

  • Collaborating with engineers, data scientists, product managers, and commercial teams to solve critical client challenges and leverage opportunities

  • Acting as a trusted technical advisor to customers and partners, translating complex concepts into actionable strategies

  • Mentoring and developing junior engineers, actively shaping our team's engineering culture and technical depth

Who we're looking for:

  • You have significant experience building and deploying secure and scalable LLM applications, and are comfortable with multi-agent harness tooling and AI Safety evaluation procedures.

  • You understand the full ML lifecycle and are confident operationalising models built with frameworks like TensorFlow or PyTorch

  • You bring deep expertise in software engineering and strong Python skills, focusing on building robust, reusable systems

  • You have demonstrable hands-on experience with cloud platforms (e.g., AWS, Azure, GCP) specifically cloud architecture, infrastructure management, and end-to-end cybersecurity practices

  • You've extensive experience working with container and orchestration tools such at Docker & Kubernetes to build and manage applications at scale

  • You thrive in fast-paced, high-growth environments, demonstrating ownership and autonomy in driving projects to completion

  • You communicate exceptionally well, confidently guiding both technical teams and senior, non-technical stakeholders

 
Our Interview Process
 
  1. Talent Team Screen (30 minutes)

  2. Pair Programming Interview (90 minutes)

  3. System Design Interview (90 minutes)

  4. Commercial Interview (60 minutes)

#LI-PRIO

 

Our Recruitment Ethos

We aim to grow the best team - not the most similar one. We know that diversity of individuals fosters diversity of thought, and that strengthens our principle of seeking truth. And we know from experience that diverse teams deliver better work, relevant to the world in which we live. We’re united by a deep intellectual curiosity and desire to use our abilities for measurable positive impact. We strongly encourage applications from people of all backgrounds, ethnicities, genders, religions and sexual orientations.

If you don’t feel you meet all the requirements, but are excited by the role and know you bring some key strengths, please don't hesitate in applying as you might be right for this role, or other roles. We are open to conversations about part-time hours.

A note on AI: we're happy for you to use it for research and interview prep, but please don't use it to generate answers during live interviews. We also use an AI note-taker (Metaview) in interviews so interviewers can stay present (which you can opt out of just let us know,) and every application is reviewed by a human, never decided by AI.

Skills Required

  • Significant experience building and deploying secure, scalable LLM applications
  • Experience with multi-agent harness tooling and AI safety evaluation procedures
  • Understanding of the full machine learning lifecycle
  • Experience operationalizing models with TensorFlow or PyTorch
  • Deep software engineering expertise and strong Python skills
  • Hands-on experience with AWS, Azure, or GCP cloud platforms
  • Experience with cloud architecture, infrastructure management, and end-to-end cybersecurity practices
  • Extensive experience with Docker and Kubernetes
  • Ability to lead projects with ownership and autonomy in fast-paced environments
  • Excellent communication skills with technical teams and senior non-technical stakeholders
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The Company
HQ: London
663 Employees
Year Founded: 2014

What We Do

We build and deploy safe AI systems that combine the best of human and artificial intelligence to help our customers achieve exceptional performance.

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