Tempus
Company
Senior Scientist, Applied Machine Learning and Generative AI, Pharma R&D
Job Description
Passionate about precision medicine and advancing the healthcare industry?
Recent advancements in underlying technology have finally made it possible for AI to impact clinical care in a meaningful way. Tempus' proprietary platform connects an entire ecosystem of real-world evidence to deliver real-time, actionable insights to physicians, providing critical information about the right treatments for the right patients, at the right time.
The Senior Scientist, Applied Machine Learning and Generative AI, Pharma R&D will perform complex computational analyses and develop algorithms and agent based tools to advance the Tempus platform supporting drug R&D. The ideal candidate will possess strong applied machine learning and generative AI skills, with experience building and applying LLM’s, agentic systems, and foundation models, in the life sciences. The candidate will also be proficient in communicating complex findings to various stakeholders.
Description
Data Expertise: Tempus has one of the largest multimodal patient datasets ever collected, providing a unique opportunity to work with extensive and diverse data. Become an expert in Tempus’ vast epidemiological, clinical, genomic, transcriptomic and pathology imaging data, along with the latest tools and techniques for their analysis and modeling.
Innovation: Drive continual improvement of the Tempus platform for pharmaceutical R&D by championing and building new machine learning and generative AI capabilities based on client needs and and industry trends.
Teamwork and collaboration:
Work with Research, Engineering & Data Science teams across Tempus’ expansive data science community to develop and deliver innovative computational solutions.
Co-develop solutions with Pharma partner science and clinical teams
Drug R&D Expertise: Work with leading pharmaceutical companies. Gain proficiency in their strategies, drug modalities, and pipelines to identify where the Tempus platform can add value.
Scientific Communication: Skillfully navigate client interactions to extract and communicate the most impactful insights driving new R&D opportunities; effectively communicate complex technical results and methodologies to diverse external stakeholders.
Scientific Leadership & Influence: Empower computational biologists and RWE scientists through targeted AI guidance and hands on coaching to increase AI tool adoption to maximize impact.
Personal development: Continuously immerse yourself in the latest industry trends, best practices, and advancements in machine learning and AI to revolutionize drug R&D
Qualifications
Education and experience:
Minimum
PhD (or Masters degree with 3+ years of relevant experience).
Plus an additional 3+ years of relevant industry or post-doctoral experience.
Combining:
Quantitative and computational skills, specifically in AI agent based workflows (e.g. Applied Machine Learning, Generative AI, Mathematics, biostatistics).
Biological, medical, or drug development knowledge and data (e.g. oncology, RWE, medical science, or clinical drug development).
Technical/Scientific Skills:
Proficient in R, Python, and SQL, with specific expertise in frameworks for agentic orchestration (e.g., LangChain, LangGraph, AutoGen, or DSPy).
Deep knowledge of LLM-driven agent architectures, including experience with prompt engineering, RAG (Retrieval-Augmented Generation), and function calling/tool use.
Applicable knowledge of machine learning and statistical modeling, with hands-on experience.
Awareness of the uses of machine learning in molecular/biomedical data analysis or drug discovery/development.
Experience working with clinical trial or real-world data, clinical guidelines (e.g., NCCN for oncology) and emerging RWE methodologies
Track record of success: proven in peer reviewed publications.
Communication Skills: Excellent written and verbal communication skills, with the ability to present complex information clearly and persuasively to diverse audiences. Comfort in a client-facing role and ability to deliver technical training to both internal and external audiences.
Motivated: Thrive in a fast-paced environment and willing to shift priorities seamlessly.
Preferred Skillsets/Background
Experience in integrative modeling of multi-modal clinical and omics data.
Strong understanding of data and artificial intelligence in drug R&D.
Understanding of cancer biology.
Previous experience working with large transcriptome and NGS data sets, or clinical or real-world medical data.
NYC: $115,000-$175,000 USD
The expected salary range above is applicable if the role is performed from New York and may vary for other locations (California, Colorado, Illinois). Actual salary may vary based on qualifications and experience. Tempus offers a full range of benefits, which may include incentive compensation, restricted stock units, medical and other benefits depending on the position.
We are an equal opportunity employer. We do not discriminate on the basis of race, religion, color, national origin, gender, sexual orientation, age, marital status, veteran status, or disability status.
Tempus
17 jobs posted
About the job
Jan 13, 2026
Feb 12, 2026
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