Machine Learning Engineer in Manchester
Machine Learning Engineer

Machine Learning Engineer in Manchester

Manchester Full-Time No home office possible
Inara

At a Glance

  • Tasks: Design and build MLOps platforms for real-world machine learning applications.
  • Company: Join a consultancy-led team focused on innovative ML solutions.
  • Benefits: Competitive day rate, remote work, and opportunities for travel.
  • Why this job: Make a tangible impact by deploying cutting-edge ML models in production.
  • Qualifications: Strong MLOps experience and hands-on expertise with MLflow required.
  • Other info: Dynamic role with potential for growth in the fast-evolving ML field.

Contract Machine Learning Engineer | MLflow | Databricks | Production ML

Duration: Initially 3 months

Day rate: £500 - £550, Inside IR35

Workplace: Remote, with occasional travel to client-site

Inara are supporting a consultancy-led team delivering production-grade machine learning platforms for a range of end clients, and they’re looking for a senior, hands-on Contract MLOps Engineer to help take ML systems from experimentation into reliable, scalable production. This role is firmly focused on ML enablement and platform engineering rather than model research. You’ll be the person ensuring models can be trained, tracked, deployed, governed, and monitored properly in real-world environments.

What you’ll be doing:

  • Designing and building end-to-end MLOps platforms that support the full ML lifecycle
  • Implementing and operating MLflow for experiment tracking, model registry, and versioning
  • Enabling production deployments of ML models (batch and/or real-time)
  • Putting robust CI/CD pipelines in place for ML workflows
  • Partnering closely with Data Scientists to move models from notebooks into production
  • Establishing best practices around model governance, monitoring, retraining, and environments
  • Integrating ML platforms with Databricks and cloud-native services

What we’re looking for:

  • Strong, real-world MLOps experience (this is not a theoretical role)
  • Deep hands-on MLflow experience — this is essential
  • Proven track record of productionising ML models across multiple client or project environments
  • Background in one or more of:
  • MLOps / ML Engineering
  • DevOps with ML platforms
  • Data Science with a strong production focus
  • Experience designing, supporting, and operating ML systems in production
  • Technical environment (experience expected across most of these):
    • MLflow (expert-level)
    • Databricks
    • Cloud platforms (AWS preferred; SageMaker exposure a bonus)
    • CI/CD for ML workloads
    • Docker and Kubernetes
    • Infrastructure as Code (Terraform or similar)
    • Python-based ML workflows

    Machine Learning Engineer in Manchester employer: Inara

    Inara is an exceptional employer for Machine Learning Engineers, offering a dynamic remote work environment that fosters innovation and collaboration. With a strong focus on employee growth, you will have the opportunity to work on cutting-edge MLOps projects while partnering with talented Data Scientists, ensuring your skills are continuously developed in a supportive culture. The flexibility of remote work combined with occasional client-site travel provides a unique balance, making Inara an attractive choice for those seeking meaningful and rewarding employment in the tech industry.
    Inara

    Contact Detail:

    Inara Recruiting Team

    StudySmarter Expert Advice 🤫

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

    ✨Tip Number 1

    Network like a pro! Reach out to your connections in the MLOps and ML community. Attend meetups, webinars, or online forums where you can chat with industry folks. You never know who might have a lead on that perfect contract role!

    ✨Tip Number 2

    Show off your skills! Create a portfolio showcasing your MLOps projects, especially those involving MLflow and Databricks. Having tangible examples of your work can really set you apart when chatting with potential clients.

    ✨Tip Number 3

    Prepare for interviews by brushing up on real-world scenarios. Be ready to discuss how you've tackled challenges in productionising ML models. We want to hear about your hands-on experience and how you’ve implemented CI/CD pipelines!

    ✨Tip Number 4

    Don’t forget to apply through our website! It’s the best way to ensure your application gets seen by the right people. Plus, we love seeing candidates who are proactive about their job search!

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

    MLOps
    MLflow
    Databricks
    CI/CD Pipelines
    Model Governance
    Monitoring
    Production ML Deployment
    Docker
    Kubernetes
    Infrastructure as Code
    Python-based ML Workflows
    Collaboration with Data Scientists
    Cloud Platforms (AWS preferred)

    Some tips for your application 🫡

    Tailor Your CV: Make sure your CV is tailored to the Machine Learning Engineer role. Highlight your hands-on experience with MLflow and any projects where you've taken models from experimentation to production. We want to see how your skills match what we're looking for!

    Showcase Your Projects: Include specific examples of MLOps platforms you've designed or worked on. If you've implemented CI/CD pipelines or integrated ML platforms with Databricks, let us know! Real-world examples will make your application stand out.

    Be Clear and Concise: When writing your application, keep it clear and to the point. Use bullet points for your achievements and avoid jargon unless it's relevant. We appreciate straightforward communication that gets to the heart of your experience.

    Apply Through Our Website: We encourage you to apply through our website for a smoother process. It helps us keep track of applications and ensures you get all the updates directly. Plus, it shows you're keen on joining our team!

    How to prepare for a job interview at Inara

    ✨Know Your MLOps Inside Out

    Make sure you brush up on your MLOps knowledge, especially around MLflow and Databricks. Be ready to discuss specific projects where you've implemented these tools, as real-world experience is key for this role.

    ✨Showcase Your CI/CD Skills

    Prepare to talk about how you've set up CI/CD pipelines for ML workflows in the past. Have examples ready that demonstrate your ability to automate deployments and ensure smooth transitions from development to production.

    ✨Collaborate Like a Pro

    This role involves working closely with Data Scientists, so be prepared to discuss how you've partnered with them in previous roles. Highlight any experiences where you’ve helped move models from notebooks into production effectively.

    ✨Be Ready for Technical Questions

    Expect some deep technical questions during the interview. Brush up on your knowledge of cloud platforms, Docker, Kubernetes, and Infrastructure as Code. Being able to speak confidently about these topics will show you're the right fit for the job.

    Machine Learning Engineer in Manchester
    Inara
    Location: Manchester

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