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Research Engineer, Machine Learning

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We're partnering with one of Europe's most exciting AI-native startups that's building an autonomous AI platform to fundamentally reinvent how new materials are discovered.
Rather than relying on simulations alone, they're combining cutting-edge machine learning with a high-throughput experimental laboratory, creating a closed-loop system where AI designs new materials, experiments validate them, and real-world results continuously improve the models.
Backed by $60M from leading global investors, they've assembled an exceptional team spanning AI, physics, materials science and engineering, and are now looking for outstanding Machine Learning Research Engineers to help build the infrastructure powering the next generation of AI for Science.
You'll be working on:
Reasons to use Rodeo
I’m in my final year doing Economics and I don’t know whether to apply for grad schemes now or do a masters first. What do you think?
Honest answer — it depends on where you want to end up. A lot of top grad schemes (Big 4, civil service, banking) don’t need a masters. Let’s look at the ones you’d be competitive for now, and we can decide if a masters actually adds anything.
Also worth knowing: most autumn 2026 applications are open now. Timing matters more than you think.
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Graduate Consultant — 2026 Scheme
Why you're a good match
StrongYour economics background and your summer at a regional bank line up with what PwC looks for on the consulting scheme. Applications close in four weeks.
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Why you're a good match
You’ve got the grades and the economics background, and your bank internship is exactly the experience this scheme looks for. Apply soon — deadlines close within the month.
Experience fit
Your summer at the bank plus your econometrics coursework map directly to the day-one responsibilities on this scheme — client modelling, market briefings, and deal support.
Only hits
No noise. No "maybe this fits." Just roles with a clear explanation of why they're right — and where to focus when applying.
- Building scalable ML infrastructure for frontier AI research
- Translating novel research into production-quality ML systems
- Distributed training and inference across large GPU clusters
- Optimising model performance, training pipelines and experimentation workflows
- Developing multimodal data pipelines spanning simulations, laboratory data and scientific literature
- Working alongside world-class AI researchers, engineers and scientists to deploy models into a real-world autonomous experimentation platform
We're looking for:
- Strong Machine Learning Engineering experience
- Deep knowledge of modern ML architectures (Transformers, GNNs, Diffusion Models, etc.)
- Excellent Python skills with PyTorch and/or JAX
- Experience building scalable production ML systems
- Someone who enjoys turning cutting-edge research into robust, high-performance software


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Bonus experience:
- Distributed GPU training (multi-GPU / multi-node)
- Scientific machine learning or simulation environments
- Performance optimisation and systems engineering
- Docker, Kubernetes, GCP or similar infrastructure
- Scientific computing or research engineering backgrounds
Why this opportunity?
This is a chance to join an exceptionally well-funded AI-for-Science company at an early stage and help build technology capable of accelerating scientific discovery in areas that matter globally. You'll work alongside some of the world's leading researchers on genuinely novel problems, with significant technical ownership from day one.
“It took my CV and asked me questions relevant to understanding what kind of jobs to suggest for me. Suggestions were almost perfect. Jobs were exactly what I’ve been looking for.”
Jessica, London
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