Machine Learning Engineer in Portsmouth
Machine Learning Engineer

Machine Learning Engineer in Portsmouth

Portsmouth Full-Time No home office possible
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At a Glance

  • Tasks: Design and deploy cutting-edge machine learning models in a fast-paced financial services environment.
  • Company: Join a leading financial services organisation with a focus on innovation.
  • Benefits: Competitive daily rate, remote work flexibility, and potential for contract extension.
  • Why this job: Make a real impact by working on high-volume ML systems that drive financial decisions.
  • Qualifications: Proven experience in machine learning, strong Python skills, and familiarity with cloud platforms.
  • Other info: Collaborative team environment with opportunities to enhance your MLOps expertise.

We are seeking an experienced Machine Learning Engineer to support a Financial Services organisation on an initial 6-month contract, working on production-grade ML systems that operate in regulated, high-volume environments.

This role is ideal for someone comfortable taking models from research through to deployment, with a strong appreciation for robust engineering, governance, and scalability.

Responsibilities
  • Design, build, and deploy machine learning models into production within a Financial Services environment
  • Collaborate closely with Data Scientists, Software Engineers, Risk, and Product teams
  • Build and maintain end-to-end ML pipelines (training, validation, inference, monitoring)
  • Ensure models meet requirements around performance, resilience, and explainability
  • Contribute to MLOps best practices, model governance, and technical standards
  • Support model monitoring, drift detection, and ongoing optimisation
Required Experience
  • Proven commercial experience as a Machine Learning Engineer, ideally within Financial Services, FinTech, or a regulated environment
  • Strong Python skills and hands-on experience with ML libraries (TensorFlow, PyTorch, scikit-learn)
  • Experience deploying and supporting ML models in production
  • Solid understanding of data pipelines, versioning, testing, and software engineering best practices
  • Experience working with cloud platforms (AWS, GCP, or Azure)
Nice to Have
  • Experience with fraud, risk, credit, AML, pricing, or customer analytics use cases
  • Familiarity with MLOps tools (MLflow, Kubeflow, Airflow, etc.)
  • Docker and Kubernetes experience
  • Exposure to model governance, explainability, or regulatory frameworks

Contract Details: Β£650–£750 per day (Outside IR35). Initial 6-month contract, with strong extension potential. Immediate or short-notice start preferred.

Machine Learning Engineer in Portsmouth employer: Edison Smart

Join a forward-thinking Financial Services organisation that values innovation and excellence in machine learning. With a strong emphasis on collaboration and professional growth, this role offers the opportunity to work remotely while contributing to impactful projects in a regulated environment. Enjoy competitive rates and the potential for contract extensions, all within a culture that prioritises robust engineering practices and continuous improvement.
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Contact Detail:

Edison Smart Recruiting Team

StudySmarter Expert Advice 🀫

We think this is how you could land Machine Learning Engineer in Portsmouth

✨Network Like a Pro

Get out there and connect with folks in the industry! Attend meetups, webinars, or even online forums. The more people you know, the better your chances of landing that Machine Learning Engineer gig.

✨Show Off Your Skills

Create a portfolio showcasing your projects and experience with ML models. Use GitHub to share your code and document your process. This will give potential employers a taste of what you can do!

✨Ace the Interview

Prepare for technical interviews by brushing up on your Python skills and ML concepts. Practice explaining your past projects and how you tackled challenges. Confidence is key, so show them you know your stuff!

✨Apply Through Us!

Don’t forget to check out our website for the latest job openings. Applying through us gives you a better chance to stand out, and we’re here to support you every step of the way!

We think you need these skills to ace Machine Learning Engineer in Portsmouth

Machine Learning Engineering
Production-Grade ML Systems
Model Deployment
Robust Engineering
Governance
Scalability
End-to-End ML Pipelines
MLOps Best Practices
Model Monitoring
Drift Detection
Python
TensorFlow
PyTorch
scikit-learn
Cloud Platforms (AWS, GCP, Azure)

Some tips for your application 🫑

Tailor Your CV: Make sure your CV is tailored to the Machine Learning Engineer role. Highlight your experience with ML models, especially in financial services, and don’t forget to showcase your Python skills and any relevant projects you've worked on.

Craft a Compelling Cover Letter: Your cover letter is your chance to shine! Use it to explain why you're the perfect fit for this role. Mention specific experiences that align with the job description, like your work with ML libraries or cloud platforms.

Showcase Your Projects: If you’ve got any projects that demonstrate your ability to take models from research to deployment, make sure to include them. We love seeing practical examples of your work, especially if they relate to MLOps or production-grade systems.

Apply Through Our Website: We encourage you to apply through our website for a smoother application process. It helps us keep track of your application and ensures you don’t miss out on any important updates!

How to prepare for a job interview at Edison Smart

✨Know Your ML Stuff

Make sure you brush up on your machine learning concepts and tools. Be ready to discuss your experience with Python, TensorFlow, and PyTorch, as well as any specific projects you've worked on in financial services. This will show that you’re not just familiar with the tech but have practical experience applying it.

✨Showcase Your End-to-End Process

Prepare to talk about how you've taken models from research to deployment. Highlight your experience with building and maintaining ML pipelines, and be ready to discuss how you ensure performance, resilience, and explainability in your models. This is crucial for a role in a regulated environment.

✨Collaboration is Key

Since this role involves working closely with Data Scientists, Software Engineers, and other teams, think of examples where you’ve successfully collaborated on projects. Emphasise your communication skills and how you’ve contributed to team success in past roles.

✨MLOps and Governance Knowledge

Familiarise yourself with MLOps best practices and model governance. Be prepared to discuss any tools you've used like MLflow or Kubeflow, and how you approach model monitoring and optimisation. This will demonstrate your understanding of the importance of these practices in a financial services context.

Machine Learning Engineer in Portsmouth
Edison Smart
Location: Portsmouth
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