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AI Scientist

Novartis
Full-time
Remote friendly (Cambridge, MA)
United States
$103,600 - $192,400 USD yearly
Clinical Research and Development

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Role Summary

AI Scientist in Oncology Data Science at Novartis Biomedical Research. Hybrid work arrangement. Seek an AI/ML scientist with curiosity about pre-clinical and clinical drug development to accelerate oncology drug discovery programs. Collaborative environment with opportunities for impactful AI models.

Responsibilities

  • Design, develop, implement and apply advanced machine learning algorithms, AI models, and platforms to enable predictive insights from pre-clinical, clinical and real-world evidence datasets.
  • Demonstrate value of innovative AI techniques in drug target identification, biomolecular interaction modeling, drug development, biomarker discovery, treatment response prediction and clinical trial design.
  • Work with foundational models, including pre-trained, self-supervised, multi-purpose, and multi-modal models to advance generative AI applications in drug discovery.
  • Collaborate with cross-functional teams to develop and adopt best practices for ML-ready data.
  • Contribute to scientific publications and present results at internal and external scientific conferences.

Qualifications

  • This position will be located at either the Cambridge, MA or Basel, Switzerland site and will not have the ability to be located remotely. This position will require 0-3% travel as defined by the business (domestic and/ or international).
  • MSc or Ph.D. in Machine Learning, Computer Science, Applied Mathematics, Computational Biology or related field; PhD preferred.
  • Minimum of 0-3 years of experience.
  • Strong experience in one or more of the following areas: generative AI, agentic AI, biomedical foundation models, geometric deep learning, multi-modal learning, and large-scale knowledge graphs.
  • Excellent programming skills and proficiency in deep learning frameworks (PyTorch), with openness to learning new tools and technologies.
  • Practical experience across ML and Large Language Models (LLMs) software stack, including feature engineering, model development, deployment, and validation.
  • Prior experience working with omics data and familiarity with oncology drug development.
  • Excellent communication skills, with the ability to communicate complex data insights and recommendations to cross-functional teams and stakeholders.
  • Demonstrated strong research skills, evidenced by publications in top-tier machine learning or artificial intelligence conferences and/or leading scientific journals.

Skills

  • Machine learning & AI; PyTorch; ML model development, deployment and validation; generative and biomedical foundation models; multi-modal learning; knowledge graphs.
  • Strong communication and collaboration abilities; ability to present complex insights to cross-functional teams.
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