Foundation Model Engineer

Pure Resourcing Solutions Limited

Cambridge

On-site

GBP 90,000 - 140,000

Full time

2 days ago
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Job summary

Pure Resourcing Solutions Limited is seeking a Foundation Model Engineer in Cambridge to join a mission-driven AI team. You will design end-to-end LLM training pipelines, source and preprocess datasets, and fine-tune open weight models with a strong focus on performance and scalability.

The role requires hands-on experience with Python and ML frameworks (PyTorch/TensorFlow), production ML pipelines, and GPU optimisation, with emphasis on rigorous evaluation and error analysis.

Qualifications

  • Proven experience training and fine-tuning LLMs or multimodal models (not just APIs).
  • Strong understanding of model evaluation, bias/variance, and data quality.

Responsibilities

  • Design end-to-end LLM training pipelines.
  • Preprocess datasets for training and evaluation.
  • Fine-tune and optimise open weight models.
  • Build evaluation frameworks and define performance metrics.
  • Develop and maintain data pipelines and training workflows.
  • Analyse training pipelines for latency, cost and scalability.
  • Implement monitoring and feedback loops for continuous improvement.
  • Experiment with modern AI tooling and services.

Skills

LLM training
Multimodal models
Python
Model debugging
Performance evaluation
GPU optimisation

Tools

PyTorch
TensorFlow

Job description

Foundation Model Engineer Cambridge | Competitive salary + benefits

About the Company

Our client is a well-funded, mission-driven organisation working at the forefront of AI development. Led by an experienced team of founders, investors and engineers, they are focused on building safe, responsible AI systems and are growing quickly from a Cambridge base.

The Opportunity

Our client is investing heavily in their machine learning infrastructure and compute capability to accelerate model development and inference. This is a chance to join at an early stage and work across the full AI lifecycle, from experimentation through to scalable deployment, with a strong emphasis on technical depth and rigour.

They're looking for a highly skilled Foundation Model Engineer with hands-on experience building, training, evaluating and deploying LLMs or multimodal models end to end. The role will focus primarily on model development, data pipelines and system performance.

What You'll Do
  • Design and implement end-to-end LLM training pipelines
  • Source and, where appropriate, preprocess datasets for training and evaluation
  • Fine-tune and optimise open weight models (LLMs, vision or traditional ML)
  • Build evaluation frameworks and define performance metrics
  • Develop and maintain data pipelines and training workflows
  • Analyse training pipelines and optimise for latency, cost and scalability
  • Implement monitoring, logging and feedback loops for continuous improvement
  • Experiment with modern AI tooling and services to assess how they can be leveraged
What You'll Bring
  • Proven experience training and fine-tuning LLMs or multimodal models (not just consuming APIs)
  • A solid understanding of model evaluation and validation, overfitting and bias/variance trade-offs, and data quality and feature engineering
  • Proficiency in Python and ML frameworks such as PyTorch or TensorFlow
  • Experience building and maintaining ML pipelines in production
  • Familiarity with GPU usage and optimisation
  • The ability to debug and improve model performance systematically
Also Valued
  • Knowledge of distributed training or large-scale data processing
  • Experience with MLOps tools (CI/CD for ML, experiment tracking, model versioning)
  • A background in applied research or publishing
  • Familiarity with retrieval systems, embeddings or ranking models

Ideally you'll have a maths or computer science research background with a focus on developing new algorithms or techniques for training and deploying AI models, whether gained in a large organisation, a start-up, or academia, with an emphasis on cutting-edge machine learning

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