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Machine Learning Engineer

Job in Newbury, Berkshire, RG14, England, UK
Listing for: Threeuk
Full Time position
Listed on 2026-07-10
Job specializations:
  • Software Development
    Machine Learning/ ML Engineer, AI Engineer (Applied/Software)
Salary/Wage Range or Industry Benchmark: 70000 - 110000 GBP Yearly GBP 70000.00 110000.00 YEAR
Job Description & How to Apply Below

Company Information

Vodafone Three:
Machine Learning (ML) Engineer

Location: Newbury / London + Hybrid working

Working Hours: Full time 37.5 hours per week – Mon – Fri

Hybrid Working

We believe that through collaboration and connection with our colleagues we can achieve great things. Our hybrid working approach allows our people to work both in the office and at home, providing the flexibility and resources you need to succeed in your role. We don't require you to be in on specific days; instead, we ask people to come into the office 2-3 days each week.

You should work with your line manager to understand what their expectations are for you, your specific role and your team.

Job Description

As ML Engineer you will be responsible for bridging the gap between data science experimentation and production-grade, scalable ML systems.

You will own the engineering excellence required to take validated models from data scientists and deploy them reliably across the organisation's fragmented platform estate. You will work across the full ML Operations lifecycle—designing deployment pipelines, implementing model serving infrastructure, establishing monitoring and governance frameworks, and automating retraining workflows. Your role is critical to standardising practices across platforms and ensuring models can be built, deployed, and maintained consistently regardless of underlying infrastructure differences.

You will collaborate closely with Data Scientists on model productionisation, AI Engineers on platform infrastructure requirements, and Analytics Engineering on data pipeline dependencies and reliability.

Key

Roles & Responsibilities
  • Design, build, and maintain ML deployment pipelines and model serving infrastructure for both real-time and batch inference workloads across multiple platforms
  • Establish comprehensive model monitoring, alerting, and performance tracking systems in production environments to ensure reliability and early problem detection
  • Implement model versioning, reproducibility, and automated retraining workflows that enable fast iteration whilst maintaining stability
  • Partner with Data Scientists to product ionise validated experimental models, translating research outputs into robust, maintainable systems
  • Contribute to platform standardisation efforts across the fragmented estate, identifying common patterns and opportunities for reuse
  • Design and implement CI/CD pipelines tailored for ML workloads, ensuring quality, traceability, and repeatability
  • Support governance and compliance requirements through technical documentation, audit trails, and reproducible deployment processes
  • Monitor and optimise compute resource allocation and infrastructure costs across platforms, applying Fin Ops principles
  • Collaborate with Analytics Engineering to ensure data pipeline reliability, quality, and performance for ML workloads
  • Contribute to team knowledge sharing and best practice documentation across the ML Engineering function
Qualifications

Job Requirements, Knowledge & Experience

We are looking for someone passionate and dedicated about ensuring our ML solutions are scalable, secure and responsibility deployed.

  • Proven experience in ML engineering or ML Operations roles with multiple production model deployments at scale
  • Strong Python programming skills with software engineering fundamentals: testing, version control, code quality, and design patterns
  • Hands‑on experience with ML platforms such as Azure AI Foundry, Azure ML, Databricks, GCP, or equivalent
  • Solid understanding of containerisation and orchestration technologies
  • Demonstrable experience designing and implementing CI/CD pipelines for machine learning workloads
What we offer

We care about our people’s success by offering great pay, bonuses, up to 28 days off plus bank holidays, and paid time for charity work. You can personalise our benefits for you and your family, like discounts, vouchers, a pension plan and loads more. We help with your career through our amazing learning tools and top‑notch parental leave policies.

Posting End Date

24th July 2026

Need to know

We are regulated by the Financial Conduct Authority and all offers of employment for this role are…

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