AI / ML Infrastructure Engineer

OpenSourced
Bristol, United Kingdom
Last month
£60,000 – £100,000 pa

Salary

£60,000 – £100,000 pa

Job Type
Permanent
Work Pattern
Full-time
Work Location
Hybrid
Posted
2 May 2026 (Last month)

AI / ML Infrastructure Engineer (MLOps) – Robotics - Hybrid in Bristol

We’re working with a cutting-edge robotics company building intelligent systems capable of learning real-world physical tasks.

They’re now hiring an AI / ML Infrastructure Engineer to own the end-to-end infrastructure that powers model training, data pipelines, and deployment into real-world robotic systems.

This is a highly technical role sitting at the intersection of machine learning, distributed systems, and robotics - not a generic MLOps position.

Key Responsibilities:

  • Build and scale GPU-based training infrastructure for large ML workloads
  • Develop robust data pipelines for multi-modal datasets
  • Own experiment tracking, model versioning, and reproducibility
  • Design and optimise model deployment pipelines (including edge inference)
  • Improve CI/CD workflows for ML systems and automate infrastructure

Key Requirements:

  • Strong Python and experience with PyTorch-based training pipelines
  • Experience with distributed training (DDP, FSDP, DeepSpeed)
  • Solid cloud experience (GCP / AWS / Azure)
  • Hands-on with Docker and infrastructure-as-code (Terraform)
  • Experience building ML pipelines in production environments

Desirable:

  • Robotics, autonomous systems, or embodied AI experience
  • GPU orchestration (Kubeflow, Kubernetes, SkyPilot)
  • Edge deployment (ONNX, TensorRT)

Why Apply?

  • Work on real-world AI systems deployed into physical robots
  • Direct impact on cutting-edge robotics capability
  • Fast-moving, high-calibre engineering environment
  • Seniority Level
  • Not Applicable
  • Industry
  • IT Services and IT Consulting
  • Employment Type
  • Full-time
  • Job Functions
  • Information Technology Engineering Skills
  • Python (Programming Language)RoboticsArtificial Intelligence (AI)InfrastructureMachine Learning

Apply now!

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Where to advertise machine learning jobs UK in 2026: the specialist boards and communities that reach ML, MLOps and deep learning engineering talent. The candidate pool is small, highly specialised and in demand across AI labs, financial services, healthcare, autonomous systems and consumer technology simultaneously. Machine learning engineers and researchers move between roles through professional networks, conference communities and specialist platforms — not general job boards where ML roles compete with unrelated software engineering positions for the same audience. This guide, published by MachineLearningJobs.co.uk, covers where to advertise machine learning roles in the UK in 2026, how the main platforms compare, what employers should expect to pay, and what the data says about hiring across different role types.