Jobs / United Kingdom / Wayve
Staff Machine Learning Engineer - Ops
Wayve · 🇬🇧 London, United Kingdom
Sponsorship verdict
No sponsorship evidence yet
No government record and no wording either way. Not a refusal — ask the recruiter.
- No government sponsor record hereThis employer posted directly and does not match a government sponsor register.
- The posting doesn’t mention sponsorshipSilence isn’t a refusal — ask the recruiter before investing much time.
- Can’t check pay against the visa rulesNo salary stated. UK Skilled Worker visa needs at least £41,700 a year (new-entrant (under 26, recent Student/Graduate visa) or STEM PhD: £33,400). Source: https://www.gov.uk/skilled-worker-visa/when-you-can-be-paid-less, rules effective 2025-07-22.
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Sponsor Radar — Wayve
This employer posted directly and does not match a government sponsor register.
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About the role
Before the detail, here's the challenge you'd help us solve. We build the embodied intelligence that moves real vehicles safely, and the ecosystem a billion machines will run on in the future. Very few people in AI can say this. Every role here, whatever the team, plugs into that. Here’s what this particular role covers. 🛠️ About our Model Integration and Release Team Our Model Integration and Release team owns the engineering release process for Wayve’s driving models. When research and engineering teams develop new architectures, features, or data changes, we validate that they meet our quality, safety, and performance standards before they reach customers. The team works across ML engineering, AI Platform, evaluation, and CI/CD to protect the model baseline while continually improving how reliably and efficiently we deliver models. 🧠 Your day-to-day • Define and evolve Wayve’s model development and release processes, including branching strategies, release cadence, configuration management, and quality gates. • Review proposed model, architecture, code, and metric changes to ensure the implementation matches its intended outcome. • Assess evaluation results and determine whether releases meet Wayve’s quality and safety standards. • Identify delivery bottlenecks and work across teams to address their root causes. • Balance speed and rigour, making informed decisions about when to accelerate delivery and when a release needs further validation. 🧩 What you’ll be working on • Release pipelines covering the full ML training and delivery lifecycle. • Automated checks and tooling that identify issues earlier in development. • Reliable evaluation methods for assessing model changes and release readiness. • CI/CD workflows that streamline model integration and delivery. • Monitoring and observability that improve confidence in production releases. • Engineering standards and operational processes that enable teams to deliver high-quality ML systems at scale. 🙌 You should apply if • You have significant software integration and release experience, including branching strategies, release cadences, and configuration management. • You understand ML training, model lifecycles, and the infrastructure required to deliver models reliably. • You can review someone else’s model, architecture, or code changes and challenge decisions that do not align with their stated intent. • You have experience with ML tooling and technologies such as PyTorch, TensorRT, model registries, quantisation, or model deployment. • You are comfortable working with CI/CD systems and GitHub Actions. • You take ownership of ambiguous, cross-team problems and prefer fixing underlying processes rather than repeatedly patching individual releases. • You combine a strong quality mindset with the judgement to recognise when speed genuinely matters. • You communicate clearly and collaborate effectively across research, engineering, platform, evaluation, and product teams. 🌱 Not ticking every box? That’s totally okay! If you’re passionate about autonomy and keen to learn, we encourage you to apply even if you don’t meet every requirement. More about Wayve: 🚀 Wayve is building the leading AI platform for autonomous driving. We are pioneering an end to end AI approach that enables vehicles to learn directly from real world experience, developing the ability to adapt, generalise and improve at scale. Instead of relying on hand coded rules or pre mapped environments, our AI Driver learns to drive by understanding the world around it. The result is technology that navigates complex urban environments with intelligence, precision and natural flow, unlocking meaningful advances in both safety and efficiency. We b