Machine Learning Engineer

SPG Resourcing

Warrington

Hybrid

GBP 55,000 - 85,000

Full time

9 days ago
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Job summary

SPG Resourcing, on behalf of a financial services organisation, is recruiting a Machine Learning Engineer for a hybrid role. You will contribute to a cross-functional data team, taking ML models from research to production and delivering scalable AI solutions.

The role emphasizes designing end-to-end ML workflows, CI/CD, IaC, and collaboration with Data Scientists, Data Engineers and Software Engineers to deploy robust ML systems in a cloud environment.

Qualifications

  • Commercial experience in ML Engineering or Data Science within a production environment
  • Strong Python development skills with solid software engineering practices
  • Experience deploying ML solutions into cloud-native production environments
  • Experience with Docker and Kubernetes in production
  • Knowledge of CI/CD, Git and IaC
  • Experience with Azure and Databricks is beneficial

Responsibilities

  • Design and enhance the organisation's ML engineering capability and Data Science platform
  • Build and automate end-to-end ML workflows with CI/CD and Infrastructure as Code
  • Collaborate with Data Scientists throughout model development and deployment
  • Deliver production-ready AI solutions with engineering standards
  • Develop high-quality Python code following best practices
  • Contribute to deployment strategies and solution architecture
  • Support deployment and operationalisation of ML and Generative AI solutions
  • Grow the engineering function with tooling and best practices

Skills

Python
ML Engineering
Cloud deployments
CI/CD
Kubernetes
Docker
MLOps
Agile
Communication
Git

Education

Bachelor's degree in a relevant field

Tools

Azure
Databricks
Jira

Job description

Machine Learning Engineer

Location: Flexible (Hybrid)

Working set up: Hybrid

Salary: Competitive + bonus + benefits

SPG are working on behalf of an established financial services organisation investing heavily in its data science and AI capabilities. As part of an expanding team, the business is delivering a range of greenfield machine learning and generative AI initiatives designed to solve real-world business challenges and enhance customer outcomes.

This is an exciting opportunity to join a collaborative data function where you'll help shape the organisation's machine learning engineering capability while building scalable, production-ready AI solutions.

The Role

Working as part of a cross-functional Data Science team, the Machine Learning Engineer will play a key role in taking machine learning models from research through to production.

You'll work closely with Data Scientists, Data Engineers and Software Engineers to build robust, scalable ML solutions while helping define best practices, tooling and automation across the full machine learning lifecycle.

This role is ideal for someone with a passion for software engineering, cloud technologies and productionising machine learning solutions within an enterprise environment.

Key responsibilities

  • Design, develop and enhance the organisation's machine learning engineering capability and Data Science platform
  • Build and automate end-to-end machine learning workflows using CI/CD and Infrastructure as Code
  • Collaborate with Data Scientists throughout the model development and deployment lifecycle
  • Work closely with engineering teams and business stakeholders to deliver production-ready AI solutions
  • Develop high-quality, maintainable Python code following software engineering best practices
  • Contribute to technical design decisions including model deployment strategies and solution architecture
  • Support the deployment and operationalisation of both traditional machine learning and Generative AI solutions
  • Help establish engineering standards, tooling and best practices as the function continues to grow

Required skills and experience

  • Commercial experience in Machine Learning Engineering or Data Science within a production environment
  • Strong Python development skills with a solid understanding of software engineering best practices
  • Experience deploying machine learning solutions into cloud-native production environments
  • Experience with containerisation technologies such as Docker and orchestration platforms including Kubernetes
  • Knowledge of modern MLOps practices including CI/CD, version control (Git) and infrastructure automation
  • Experience working with cloud platforms and modern data ecosystems (Azure and Databricks experience beneficial)
  • Strong understanding of machine learning principles and model deployment processes
  • Excellent communication skills with the ability to explain technical concepts to non-technical stakeholders
  • Experience working with Agile delivery methodologies and tools such as Azure DevOps and Jira

Desirable experience

  • Experience working with Large Language Models (LLMs), Generative AI or Agentic AI solutions in a commercial environment
  • Experience deploying machine learning models within regulated industries such as financial services or insurance
  • Exposure to enterprise-scale MLOps and cloud infrastructure
  • Experience contributing to platform architecture and engineering best practices
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