Principal ML Engineer

Wood Mackenzie

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profile Job Location:

London - UK

profile Monthly Salary: Not Disclosed
Posted on: Yesterday
Vacancies: 1 Vacancy

Job Summary

Wood Mackenzie is the global leader in analytics insights and proprietary data across the entire energy and natural resources landscape.


For over 50 years our work has guided the decisions of the worlds most influential energy producers utilities companies financial institutions and governments.


Now with the worlds energy system more complex and interconnected than ever before sector-specific views are no longer enough. Thats why weve redefined whats possible with Intelligence Connected.


By fusing our unparalleled proprietary data with the sharpest analytical minds all supercharged by Synoptic AI we deliver a clear interconnected view of the entire value chain. Our trusted team of 2700 experts across 30 countries breaks siloes and connects industries markets and regions across the globe.


This empowers our customers to identify risk sooner spot opportunities faster and recalibrate strategy with confidence whether planning days weeks months or decades ahead.


Wood Mackenzie
Intelligence Connected


Wood Mackenzie Brand Video

Wood Mackenzie Values

  • Inclusive we succeed together
  • Trusting we choose to trust each other
  • Customer committed we put customers at the heart of our decisions
  • Future Focused we accelerate change
  • Curious we turn knowledge into action

As a PrincipalMLOpsEngineer you will be the architectural visionary driving the design scalability and security of our enterprise machine learning infrastructure.

You will lead the technical strategy for end-to-end ML lifecyclesestablishingrobust automated pipelinesoptimizingcomplex model serving and ensuring rigorous observability across all production deployments.

In this highly cross-functional role you will partner closely with data science and engineering teams to bridge the gap between research and production while simultaneously mentoring talent and setting the standard for engineering excellence.

Main responsibilities

Workingin thecentral machine learningdepartment you will becollaboratingwithourdata scienceand engineeringteamsandreportingtotheVP of Machine Learning.

Responsibilities will include:

  • Design build and maintain highly scalable robust and secure machine learning infrastructure and platforms across the entire organization.

  • Define and drive the long-term MLOps vision roadmap and best practices in alignment with broader business and engineering goals.

  • Establish and optimize automated CI/CD/CT pipelines for machine learning models ensuring seamless transitions from research to production.

  • Oversee the deployment of complex models (including LLMs and deep learning models) optimizing for latency throughput and cost-efficiency.

  • Implement enterprise-grade monitoring alerting and logging for model performance data drift concept drift and system health. Ensure robust AI governance and security compliance.

  • Partner closely with Data Scientists Data Engineers Software Engineers and Product Managers to bridge the gap between model development and software engineering developing standardised workflows that accelerate the path to production.

  • Mentor data scientists in MLOps best practices foster a culture of engineering excellence and lead technical design reviews.

Key Skills & Experience

You will be passionate about solving complex customer problems and bringing great products to market.

  • Extensive Experience: considerable experience in software engineering DevOps or Data Engineering with dedicated experience in MLOps ML infrastructure or deploying ML models at scale.

  • Cloud & Infrastructure: Deep hands-on expertise with AWS and its respective managed ML/AI services (SageMaker Bedrock).

  • Containerization & Orchestration: Advanced proficiency with Kubernetes Docker and ML-specific orchestration tools like MLFlow.

  • Programming Languages: Strong software development skills in Python alongside proficiency in languages like C or Java for high-performance systems.

  • CI/CD & Infrastructure as Code: Mastery of automation tools (GitHub Actions GitLab CI Jenkins Octopus Deploy) and IaC frameworks (Terraform Pulumi Ansible).

  • ML Framework Knowledge: Strong understanding of the underlying mechanics of popular ML and deep learning frameworks (PyTorch TensorFlow Scikit-Learn) to effectively troubleshoot and optimize deployments.

  • Leadership Track Record: Demonstrated ability to lead complex multi-quarter technical initiatives from conception to successful production rollout including stakeholder management.

Equal Opportunities

We are an equal opportunities employer. This means we are committed to recruiting the best people regardless of their race colour religion age sex national origin disability or protected veteran status. You can find out more about your rights under the law at

If you are applying for a role and have a physical or mental disability we will support you with your application or through the hiring process.


Required Experience:

Staff IC

Wood Mackenzie is the global leader in analytics insights and proprietary data across the entire energy and natural resources landscape.For over 50 years our work has guided the decisions of the worlds most influential energy producers utilities companies financial institutions and governments.Now w...
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Empower strategic decision-making in global natural resources with quality data, analysis and advice. Discover the latest insights and reports online.

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