Lead Mlops Engineer
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What you'll do
- Design, build and maintain CI/CD pipelines for ML, AI and agent systems
- Deploy and operate ML models and AI/agents in production (e.g. Cloud Run, containerised services)
- Develop containerisation and orchestration strategies
- Architect and manage solutions on cloud infrastructure (GCP) and Infrastructure as Code (Terraform)
- Optimise infrastructure for performance, scalability and cost
- Define and evolve the MLOps/AIOps platform roadmap, aligning with AI, cloud and governance strategies
- Implement monitoring, logging and observability across performance, latency, errors and drift
- Build and run evaluation pipelines, regression testing and drift detection
- Manage model and agent lifecycle (versioning, rollout/rollback, retraining, decommissioning)
- Own production reliability, incident response and on-call
- Operate AI agent systems, including MCP-based integrations, ensuring observability, evaluation and reliability
- Enable multiple teams to adopt standardised deployment, monitoring and lifecycle patterns across ML and AI systems
What they're looking for
- Bachelor’s degree in Computer Science, Engineering or related field (Master’s preferred).
- ~5+ years in MLOps, ML engineering or cloud engineering.
- Strong experience with Python, Terraform, Docker and Kubernetes
- Deep familiarity with GCP and its ML ecosystem.
Nice to have
- Master’s degree in Computer Science, Engineering or related field.
Summarised by NextRaise from the employer’s description, which follows in full below.
Full description from employer
Dyson is an equal opportunity employer. We know that great minds don’t think alike, and it takes all kinds of minds to make our technology so unique. We welcome applications from all backgrounds and employment decisions are made without regard to race, colour, religion, national or ethnic origin, sex, sexual orientation, gender identity or expression, age, disability, protected veteran status or other any other dimension of diversity.
Company
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