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About the role
Job Title: Machine Learning Engineer (Molecular Design) Location: Hybrid – Bay Area, CA
Job Description: We are seeking a Machine Learning Engineer with expertise in molecular design to support cutting-edge drug discovery initiatives. The role focuses on developing and optimizing ML workflows for molecular property prediction and generative modeling to accelerate research and innovation.
Key Responsibilities:
Develop and implement machine learning models for molecular property prediction and generative molecular design.
Collaborate with cross-functional teams to integrate ML workflows into drug discovery pipelines.
Analyze and interpret complex molecular datasets to guide experimental design.
Stay up-to-date with the latest research and publications in molecular modeling and computational chemistry.
Qualifications
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3–5 years of experience in machine learning, computational chemistry, or molecular modeling, or a PhD with relevant publications in molecular design.
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Strong programming skills in Python and familiarity with ML frameworks (e.g., PyTorch, TensorFlow).
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Hands-on experience with generative models, predictive modeling, and molecular simulations.
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Excellent analytical, problem-solving, and communication skills.
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Preferred:
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Experience in drug discovery or pharmaceutical research environments.
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Familiarity with cheminformatics tools and molecular libraries.
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