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Vacantes / Relationrx

Senior Machine Learning Research Engineer

Relationrx · Londonsenior

En corto

  • ▸Ingeniero de investigación en ML senior que construye y escala modelos predictivos y generativos para biología celular.
  • ▸Trabajas día a día con científicos de ML, optimizando entrenamiento distribuido, infraestructura y despliegue en datos multiómicos.
  • ▸Destacado: acceso a datos de alta calidad de tejidos humanos y flujos de trabajo agenticos de vanguardia.

Proficiency in English required for collaboration with international teams.

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¿Qué piden?

  • ✓Título en Ciencias de la Computación, Ingeniería, Física o disciplina cuantitativa relacionada.
  • ✓Experiencia industrial como ingeniero de ML o investigación en entrenamiento de redes neuronales a gran escala.
  • ✓Experto en Python y PyTorch (o marcos modernos de ML equivalentes).
  • ✓Experiencia comprobada en entrenamiento distribuido en múltiples GPUs y nodos.
  • ✓Capacidad para convertir prototipos de investigación en infraestructura robusta y reutilizable.
  • ✓Conocimiento práctico de infraestructura en la nube y entornos contenedorizados.

¿No cumplís todo? Es lo normal — tu dossier gratis te dice qué gaps tenés y cómo cubrirlos en la entrevista.

PythonPyTorchCUDATritonDockerKubernetesAWSGCPMLflowGit

¿A quién escribirle en Relationrx?

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About Relation Relation is a sector defining TechBio company developing transformational medicines, with technology at our core. Our ambition is to understand human biology in unprecedented ways, discovering therapies to treat some of life’s most devastating diseases. We leverage single-cell multi-omics from patient tissue, functional assays, and machine learning to drive disease understanding, from cause to cure. We are scaling rapidly and building a team of exceptional individuals to push the boundaries of drug discovery. You will work in highly interdisciplinary teams where biology, computation, and engineering come together to solve complex problems that have not been solved before. Our state-of-the-art wet and dry labs in the heart of London are designed to accelerate this integration and translate insight into impact. We are committed to building diverse and inclusive teams. Relation is an equal opportunities employer and does not discriminate on the basis of gender, sexual orientation, marital or civil partnership status, gender reassignment, race, colour, nationality, ethnic or national origin, religion or belief, disability, or age. By joining Relation, you will help define how medicines are discovered and deliver meaningful impact for patients. The opportunity Relation is offering an outstanding opportunity for a Senior Machine Learning Research Engineer to help build and scale the next generation of generative and predictive models of cellular behaviour. Research Engineers at Relation are software engineers with a deep understanding of machine learning and deep learning, acting as a critical bridge between theory and implementation: designing, building, and scaling the complex systems on which our ML research depends. You'll be joining a team with access to cutting-edge multiomic and interventional datasets, advanced computational infrastructure, and deep interdisciplinary expertise, and a culture that embraces modern ML tooling, including agentic workflows. Key responsibilities include implementing and optimising large neural network models; building robust infrastructure for distributed training, evaluation, and inference; and partnering with ML Scientists to take research from prototype to production-grade systems applied to large, multi-modal biological data, tested directly in experimental biology. Day to day, you will Implement and optimise large models, partnering with ML Scientists to translate research ideas into reproducible, scalable training pipelines. Profile and optimise training across compute, memory, and I/O, pursuing measurable gains in throughput, convergence, and stability. Design and implement distributed training strategies across multi-GPU and multi-node configurations. Build and maintain core ML infrastructure. Contribute to architectural and algorithmic decisions, bringing engineering judgment into research discussions. Optimise inference and downstream deployment so models can be used by data scientists and biologists in our discovery workflows. Address numerical, performance, and reliability issues across the stack. Establish and maintain engineering practices in research code. Track developments in ML systems and bring relevant advances into our stack. Professionally, you will have A degree in Computer Science, Engineering, Physics, or a related quantitative discipline; industry experience as an ML / research engineer working on large neural network training. Strong software engineering fundamentals in Python and deep expertise in PyTorch (or equivalent modern ML frameworks). Hands-on experience training large neural networks at scale, including distributed training frameworks. Demonstrable experience profiling and optimising GPU workloads. Working knowledge of cloud-based ML infrastructure and containerised environments. A track record of taking research code from prototype to robust, reusable infrastructure that other people actually use.

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