Over the coming decade, deep learning looks set to have a transformational impact on the natural sciences. The consequences are potentially far-reaching and could dramatically improve our ability to model and predict natural phenomena over widely varying scales of space and time. Our AI4Science team encompasses world experts in machine learning, computational chemistry, material science, quantum physics, molecular biology, fluid dynamics, software engineering, and other disciplines, who are working together to tackle some of the most pressing challenges in this field.
For our lab in Cambridge, we are seeking Research Software Development Engineer (RSDE) candidates in the area of deep learning for material generation. The successful applicant is expected to contribute to cutting-edge technological developments of generative models, reinforcement learning, and graph neural networks for materials generation, which has the potential to discover breakthrough materials for a broad range of applications.
This is an exceptional opportunity to drive ambitious research in a highly collaborative, diverse and global team of other researchers and engineers, and to push the state of the art in machine learning for molecular modelling.
Job ID: 129378
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