MLOps Engineer

CoreWeave Europe

Greater London

On-site

GBP 90,000 - 140,000

Full time

14 days+
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Benefits offered by this job

Family-level Medical Insurance
Family-level Dental Insurance
Generous Pension Contribution
Life Assurance at 4x Salary
Critical Illness Cover
Employee Assistance Programme
Tuition Reimbursement

Job summary

CoreWeave Europe is seeking an experienced MLOps Engineer to own our physical AI ML ops surface across the full model lifecycle—from experimentation and training through packaging, deployment, serving, and retirement.

You will define and roll out MLOps practices, establish SLOs/SLAs, and build automated CI/CD and continuous training pipelines to accelerate production readiness and observability. Collaboration with data science and infra teams is essential.

Qualifications

  • 5–6+ years of professional experience in MLOps, ML platform engineering, or production ML systems.
  • Experience building, operating, and automating production ML pipelines with tracking, registries, and deployment workflows.
  • Hands-on observability for ML systems, monitoring inference latency, drift, and resource usage.
  • Strong reliability engineering background, with incident response and SLO/SLAs.
  • Proficient in Python and IaC, with CI/CD automation experience.
  • Experience in containerised, cloud-native environments using Kubernetes and public clouds.

Responsibilities

  • Own the end-to-end ML ops surface across the model lifecycle—from experimentation to production deployment.
  • Define and roll out MLOps practices, establish SLOs/SLAs, and build automated CI/CD and training pipelines.
  • Implement model observability, data versioning, and drift monitoring with strong security controls.
  • Collaborate with product, data science, and core infra teams to optimise GPU compute and reliability.
  • Mentor engineers on production‑grade ML practices and incident response.

Skills

MLOps
ML Platform Engineering
CI/CD
Python
Kubernetes
Cloud Platforms
Observability

Tools

Kubernetes
Docker
CI/CD pipelines
GitHub Actions
MLflow

Job description

CoreWeave is The Essential Cloud for AI™. Built for pioneers by pioneers, CoreWeave delivers a platform of technology, tools, and teams that enables innovators to build and scale AI with confidence. Trusted by leading AI labs, startups, and global enterprises, CoreWeave combines superior infrastructure performance with deep technical expertise to accelerate breakthroughs and turn compute into capability. Founded in 2017, CoreWeave became a publicly traded company (Nasdaq: CRWV) in March 2025. Learn more at www.coreweave.com.

We're proud to be a Living Wage accredited Employer.

What You'll Do:

CoreWeave’s Physical AI Platform Engineering team builds and scales the data and workflow backbone powering advanced engineering simulation and AI workflows. Our ambition is to become the super‑intelligent AI test lab for the engineering industry, delivering the performant, reliable, and trustworthy data foundation trusted by the world’s largest engineering companies.

About the role: As an MLOps Engineer on the Physical AI team, you will serve as the hands‑on owner for our machine learning operations surface across the end‑to‑end model lifecycle—from experimentation and training through to packaging, deployment, serving, and retirement. You will define and roll out MLOps practices, establish operational SLOs/SLAs, and build automated CI/CD and continuous training pipelines to accelerate the path from experiment to supported production deployment. In this role, you will implement comprehensive model observability, data versioning, and drift monitoring while ensuring robust security and governance controls. Additionally, you will partner closely with product, data science, and core infrastructure teams to optimize GPU compute utilization, resolve cross‑boundary platform incidents, and mentor engineers on production‑grade ML practices.

Who You Are:
  • 5–6+ years of professional experience in MLOps, ML platform engineering, ML infrastructure, or SRE/DevOps for production machine learning systems.
  • Proven experience building, operating, and automating production ML pipelines covering experiment tracking, model registries, artifact versioning, dataset management, and deployment workflows.
  • Deep hands‑on experience implementing observability for ML systems, including monitoring inference availability, latency, throughput, GPU/resource utilization, and data or model drift.
  • Strong background in reliability engineering, including defining operational SLOs, writing runbooks, building automated remediation, and managing incident response for ML workloads.
  • Proficient in Python for platform tooling, infrastructure integration, and pipeline automation, alongside strong infrastructure‑as‑code and CI/CD practices.
  • Comfortable operating containerised, cloud‑native environments using Kubernetes and public cloud platforms.
  • Excellent technical communication and cross‑functional collaboration skills, with a track record of bridging data science and platform engineering teams.

Preferred:

  • Experience as an early or founding MLOps engineer establishing ML platform architecture, standards, and operating models from the ground up.
  • Hands‑on experience operating ML workloads on Kubernetes with GPU infrastructure, distributed training, or large‑scale inference engines.
  • Experience with ML platforms handling test, simulation, or time‑series data (e.g., physical test benches, battery labs, automotive/aerospace R&D) within multi‑tenant SaaS environments.

Wondering if you're a good fit?

We believe in investing in our people, and value candidates who can bring their own diversified experiences to our teams—even if you aren't a 100% skill or experience match. Here are a few qualities we've found compatible with our team. If some of this describes you, we'd love to talk.

  • You love to make the path from ML experiment to production reliable, reproducible, and effortless to operate.
  • You're curious about mapping complex system interactions between data, models, and GPU infrastructure to design for rapid recovery.
  • You're an expert in establishing MLOps best practices, automating model delivery pipelines, and mentoring data scientists on production readiness.
Why CoreWeave?

At CoreWeave, we work hard, have fun, and move fast! We're in an exciting stage of hyper‑growth that you will not want to miss out on. We're not afraid of a little chaos, and we're constantly learning. Our team cares deeply about how we build our product and how we work together, which is represented through our core values:

  • Be Curious at Your Core
  • Act Like an Owner
  • Empower Employees
  • Deliver Best‑in‑Class Client Experiences
  • Achieve More Together

We support and encourage an entrepreneurial outlook and independent thinking. We foster an environment that encourages collaboration and enables the development of innovative solutions to complex problems. As we get set for takeoff, the organisation's growth opportunities are constantly expanding. You will be surrounded by some of the best talent in the industry, who will want to learn from you, too. Come join us!

The starting salary will be determined by job‑related knowledge, skills, experience, and the market location. We strive for both market alignment and internal equity when determining compensation. In addition to base salary, our total rewards package includes a discretionary bonus, equity awards, and a comprehensive benefits program (all based on eligibility).

To fulfill our obligation to protect client data, successful applicants offered employment with CoreWeave will be required to complete a basic criminal record check, conducted in compliance with GDPR. Employment offers are conditional upon receiving satisfactory check results.

What We Offer

In addition to a competitive salary, we offer a variety of benefits to support your needs, including:

  • Family-level Medical Insurance
  • Family-level Dental Insurance
  • Generous Pension Contribution
  • Life Assurance at 4x Salary
  • Critical Illness Cover
  • Employee Assistance ProgrammeTuition Reimbursement
  • Work culture focused on innovative disruption

Benefits may vary by location.

Equal Opportunity

CoreWeave is an equal opportunity employer, committed to fostering an inclusive and supportive workplace. All qualified applicants and candidates will receive consideration for employment without regard to race, color, religion, sex, disability, age, sexual orientation, gender identity, national origin, veteran status, or genetic information.

Export Control Compliance

This position requires access to export controlled information. To conform to U.S. Government export regulations applicable to that information, applicant must either be (A) a U.S. person, defined as a (i) U.S. citizen or national, (ii) U.S. lawful permanent resident (green card holder), (iii) refugee under 8 U.S.C. § 1157, or (iv) asylee under 8 U.S.C. § 1158, (B) eligible to access the export controlled information without a required export authorization, or (C) eligible and reasonably likely to obtain the required export authorization from the applicable U.S. government agency. CoreWeave may, for legitimate business reasons, decline to pursue any export licensing process.

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