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Global

Senior Machine Learning Engineer

Reposted Yesterday
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In-Office
Holborn-Strand-Covent Garden, London, England, GBR
Senior level
In-Office
Holborn-Strand-Covent Garden, London, England, GBR
Senior level
The Senior Machine Learning Engineer will design, build, and optimize ML models and pipelines for a digital ad exchange platform, focusing on real-time inference and integration within data infrastructure.
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Accepting applications until: 31 July 2026Job Description

Your New Role: Senior Machine Learning Engineer

Global’s Data team is looking for a Senior Machine Learning Engineer to build, deploy and scale machine learning solutions—turning data science ideas into robust, production-grade products.

As a Senior Machine Learning Engineer at Global, you’ll support use cases across DAX, our digital ad exchange—such as the cross-device audience identity graph and real-time targeting algorithms. You’ll join a high-performing, cross-functional DAX squad of data engineers, product specialists and analytics experts, helping build and evolve our cutting-edge ad-serving technology for audio and Outdoor. This is a hybrid role based at our Holborn office in central London.

Key Responsibilities

  • Model Development & Optimisation: Design, build and optimise ML and deep-learning models—including for ad targeting and attribution—with a focus on scalability, performance and accuracy, and prototype and evaluate new approaches.

  • ML Pipelines & Real-Time Inference: Build and maintain robust end-to-end ML pipelines covering training, validation, deployment and monitoring, and develop real-time inference systems with low latency and high throughput.

  • Monitoring & Reliability: Implement model monitoring, drift detection, alerting and retraining, and optimise models for reliability and cost efficiency in AWS.

  • Collaboration & Enablement: Partner with data engineers to integrate ML workflows into wider platforms (Spark, Databricks), and share best practice and mentor other technical professionals.

What You’ll Love About This Role

  • Think Big: Build ML and AI solutions that shape products, improve decision-making and unlock growth.

  • Own It: Take ideas from concept to production and see the impact of your work in the real world.

  • Keep it Simple: Turn complex technical challenges into scalable, practical solutions.

  • Better Together: Work with smart, supportive people across data, engineering, analytics and the wider business.

What Success Looks Like

In your first few months, you’ll have:

  • Built ML products that deliver measurable value, improving Global’s capabilities in areas such as ad targeting and attribution.

  • Ensured ML models are reliably deployed, monitored and maintained, with automated, reproducible and scalable pipelines.

  • Built real-time systems that operate efficiently and reliably under production demand.

  • Developed a strong understanding of Global’s data ecosystem, tools and operating model, particularly within DAX.

What You’ll Need

  • Production ML experience: You’ve delivered ML and deep-learning projects at high data volume commercially, owning deployment, CI/CD, monitoring and lifecycle management.

  • Strong Python: Solid Python with PyTorch or similar ML frameworks.

  • Model evaluation: You diagnose why models underperform across data, features and architecture, and make reasoned trade-offs.

  • Real-time & distributed ML: A strong grasp of production inference patterns, plus Spark and distributed data processing.

  • Reproducibility & tooling: Reproducible environments (UV/Docker) and MLflow or equivalent, on AWS with Spark, Databricks and Snowflake.

  • Engineering mindset: A focus on reliability, maintainability and continuous improvement.

HQ

Global London, England Office

30 Leicester Square, London, United Kingdom, WC2H 7LA

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