Machine Learning Engineer

Compare the Market
Charing Cross, United Kingdom
17 days ago

Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours
Languages
English

Job location

Charing Cross, United Kingdom

Tech stack

Adobe InDesign
Artificial Intelligence
Airflow
Continuous Integration
Python
Machine Learning
Scrum
Software Engineering
Data Streaming
Kubernetes
Information Technology
Apache Flink
Kafka
Machine Learning Operations
Software Version Control
Databricks

Job description

At Compare the Market, we're applying AI to real-world problems that help millions of people make smarter financial decisions. As a Machine Learning Engineer, you'll work at the heart of this transformation-building the infrastructure and tooling that enables our data scientists to move from prototype to production quickly, safely, and at scale.

You'll be part of a growing ML Engineering team, contributing to a modern MLOps platform and delivering robust ML services in collaboration with product, engineering, and data science colleagues. This is a hands-on role that's ideal for someone who wants to grow in a high-impact environment with strong mentorship and real ownership.

What you'll be doing

ML Engineering & Deployment

  • Develop and maintain machine learning pipelines for training, validation, and deployment
  • Collaborate with data scientists to productionise models and turn prototypes into performant, reliable services
  • Contribute to deployment tooling and automation for both batch and real-time ML use cases
  • Build monitoring and alerting for model health, performance, and data drift

Platform & Standards

  • Support the evolution of our internal ML platform and development workflows
  • Apply best practices in testing, CI/CD, version control, and infrastructure-as-code
  • Contribute to team libraries, reusable components, and shared deployment patterns

Collaboration & Growth

  • Work in cross-functional teams alongside product managers, engineers, and analysts
  • Participate in design sessions, peer reviews, and sprint planning
  • Learn from and be mentored by experienced ML Engineers and technical leaders

Requirements

Do you have experience in Python?, Must Have

  • Practical experience deploying ML models into production environments
  • Strong Python development skills and understanding of ML model structures
  • Familiarity with tools such as MLflow, Airflow, SageMaker, or Vertex AI
  • Understanding of CI/CD concepts and basic infrastructure automation
  • Ability to write well-tested, maintainable, and modular code
  • Strong collaboration skills and a growth mindset
  • A background in software engineering, computer science, or a quantitative field-or equivalent hands-on experience in ML delivery

Nice to Have

  • Experience working in regulated sectors such as insurance, banking, or financial services
  • Exposure to Databricks, container orchestration (e.g. Kubernetes), or workflow engines (e.g. Argo, Airflow)
  • Familiarity with real-time model deployment, streaming data, or event-driven systems (e.g. Kafka, Flink)
  • Interest in MLOps, model governance, and responsible AI practices
  • Understanding of basic model evaluation, drift detection, and monitoring techniques

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