Machine Learning Engineer

Faculty

United States

Hybrid

USD 93,000 - 159,000

Full time

14 days+
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Job summary

Faculty is seeking a Machine Learning Engineer to deliver bespoke AI solutions for diverse clients. You will bring ML models from lab to real-world production, shaping scalable software architecture and best practices.

Collaborate with clients and cross-functional teams to ensure feasible, timely, and high-quality ML systems. You will work on projects requiring UK Security Clearance (SC) eligibility, travel 2–4 days per week to client sites, and flexibility to work from our London office or

Qualifications

  • Experience operationalising models with Scikit-learn, TensorFlow, or PyTorch.
  • Strong Python and software engineering practices.
  • Hands-on experience with cloud platforms (AWS/Azure/GCP), including architecture and security.
  • Experience with Docker and Kubernetes for scale.
  • Excellent communication and ability to translate ML concepts for stakeholders.
  • Thrives in a fast-paced environment with autonomous ownership.

Responsibilities

  • Build and deploy production-grade ML software, tools, and infrastructure.
  • Create reusable, scalable solutions that accelerate ML delivery.
  • Collaborate with engineers, data scientists, and commercial leads to solve client challenges.
  • Lead technical scoping and architectural decisions for feasibility and impact.
  • Define and implement deployment standards for ML at scale across projects.
  • Advise customers and partners on ML concepts and architectures.

Skills

Full ML lifecycle
Python
Cloud platforms
Docker
Kubernetes
Statistical methods
Communication

Tools

Docker
Kubernetes
Scikit-learn
TensorFlow
PyTorch
AWS
Azure
GCP

Job description

Why Faculty?

We established Faculty in 2014 because we thought that AI would be the most important technology of our time. Since then, we have 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 Defence team is focused on building and embedding human-centered AI solutions which give our nation a competitive edge in the defence sector. We collaborate with our clients to bring ethical, reliable and cutting-edge AI to high-stakes situations and maintain the balance of global powers essential to our liberty.
Because of the nature of the work we do with our Defence clients, you will need to be eligible for UK Security Clearance (SC) and willing to work between 2 to 4 days per week on-site with these customers which may require travel to locations throughout the UK.
When not required on client sites, you'll have the flexibility to work from our London office or remotely from elsewhere within the UK.

About the role

Join us as a Machine Learning Engineer to deliver bespoke, impactful AI solutions for our diverse clients.

You will be instrumental in bringing machine learning out of the lab and into the real world, contributing to scalable software architecture and defining best practices. Working with clients, and cross-functional teams, you'll ensure technical feasibility and timely delivery of high-quality, production-grade ML systems.

What you'll be doing:
  • Building and deploying production-grade ML software, tools, and infrastructure.

  • Creating reusable, scalable solutions that accelerate the delivery of ML systems.

  • Collaborating with engineers, data scientists, and commercial leads to solve critical client challenges.

  • Leading technical scoping and architectural decisions to ensure project feasibility and impact.

  • Defining and implementing Faculty's standards for deploying machine learning at scale.

  • Acting as a technical advisor to customers and partners, translating complex ML concepts for stakeholders.

Who we're looking for:
  • You understand the full machine learning lifecycle and have experience operationalising models built with frameworks like Scikit-learn, TensorFlow, or PyTorch.

  • You possess strong Python skills and solid experience in software engineering best practices.

  • You bring hands-on experience with cloud platforms and infrastructure (e.g., AWS, Azure, GCP), including architecture and security.

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

  • You are comfortable with core ML concepts, including probability, statistics, and common learning techniques.

  • You're an excellent communicator, able to guide technical teams and confidently advise non-technical stakeholders.

  • You thrive in a fast-paced environment, and enjoy the autonomy to own scope, solve and delivery solutions

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)

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.

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.

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