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Job description
The Team Leader in Data Science, Disease Area X at Novartis will lead and contribute to high-impact data science programs that transform complex biological, translational, and multi-omics data into decision-driving insights for drug discovery. This role will combine scientific leadership, hands-on computational expertise, and people leadership to advance target identification, biomarker discovery, mechanism-of-action understanding, and portfolio decisions. The successful candidate will lead a multidisciplinary team of data scientists and partner closely with biology, translational research, data sciences, IT, and discovery platform teams. They will help define and operationalize AI/ML strategy for discovery applications, including generative and agentic AI. This leader will also contribute significantly to data generation, curation, and engineering strategies that enable scalable use of proprietary and public datasets. The role reports to the Head of Data Science, Disease Area X., Internal Job Title: Senior Principal Scientist or Associate Director, * Lead data science strategy and execution for hypothesis-driven discovery programs, including study design, analysis of experiments, and interpretation of complex biological datasets.
- Drive multi-omics analytics across genomics, transcriptomics, proteomics, single-cell, spatial, imaging, clinical, and other relevant data modalities to support target and biomarker portfolios.
- Translate scientific questions into computational strategies, selecting fit-for-purpose statistical, machine learning, AI, and bioinformatics approaches.
- Operationalize responsible use of generative and/or agentic AI tools in drug discovery workflows, ensuring scientific rigor, data governance, and appropriate human oversight.
- Contribute hands-on technical work in scientific software development, data engineering, workflow automation, reproducible analysis, and scalable analytical pipelines.
- Partner cross-functionally with wet-lab scientists, translational researchers, platform teams, and senior stakeholders to shape experimental design and accelerate decision-making.
- Prioritize resources and capabilities across multiple projects, adapting to evolving portfolio needs and balancing strategic impact with delivery timelines.
- Lead, coach, and develop direct reports, creating a collaborative, inclusive, scientifically rigorous, and high-performing team environment.
- Communicate scientific findings and recommendations clearly through internal presentations, governance discussions, publications, posters, and external scientific forums.
- Promote FAIR data practices, reproducible research, high-quality documentation, project tracking, and scalable analytical standards across the team., Analytics Consulting Innovation Accounting Scalability Procurement Forecasting A/B Testing Supply Chain Data Science Communication Data Analysis Deep Learning Data Pipelines Causal Inference Machine Learning Model Validation Data Engineering Performance Review Advanced Analytics Workflow Management Intelligent Systems Statistical Modeling Research Experiences Quantitative Research Business Intelligence Stakeholder Management Artificial Intelligence Decision Support Systems SQL (Programming Language) Python (Programming Language) Natural Language Processing (NLP) Time Series Analysis And Forecasting +0
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Salesforce Developer Data Scientist TEKsystems
New York, NY*Remote
Research Power BI Equities Economics AI Agents Operations Data Science Microsoft Azure Research Papers Capital Markets Business Valuation Workflow Management Financial Analytics Full Stack Development Artificial Intelligence Business Transformation SQL (Programming Language) Snowflake (Data Warehouse) Business Intelligence Tools Online Analytical Processing Microsoft Certified Professional Business Intelligence Dashboards +0 Data Scientist TEKsystems
Phoenix, AZ*Remote
Ideation AI Agents Operations Leadership Consulting Scalability AI Adoption Data Science Communication Systems Design Vector Database Machine Learning Anomaly Detection Business Problems Influencing Skills Business Valuation Workflow Management Predictive Modeling Product Engineering Context Engineering Software Engineering Software Development Technical Leadership Business Requirements Full Stack Development Stakeholder Management Intelligent Automation Artificial Intelligence Business Transformation Business Continuity Planning Influencing Without Authority Systems Development Life Cycle Application Programming Interface (API) Applications Of Artificial Intelligence +0
Requirements
Biology, Jupyter Research Genetics Genomics Leadership Governance Innovation Resilience Biomarkers Statistics Proteomics Agentic AI Scalability Biochemistry Data Science Communication Presentations Life Sciences Biotechnology Drug Discovery Self-Awareness Bioinformatics Pharmaceuticals Data Governance Machine Learning Data Engineering Matrix Management Molecular Biology Influencing Skills Workflow Management Workflow Automation Experimental Design Software Development Clinical Study Design Computational Biology Translational Research Artificial Intelligence R (Programming Language) Balancing (Ledger/Billing) Ribonucleic Acid Sequencing Hugging Face (NLP Framework) Python (Programming Language) Ethical Standards And Conduct Influencing Without Authority, * Advanced degree (PhD preferred) in Data Science, Computational Biology, Bioinformatics, Computational Science, Molecular Biology, Genetics, Biochemistry, Engineering, or a related quantitative or life sciences discipline.
- 6+ years of relevant experience applying computational biology, bioinformatics, AI/ML, statistics, or data science to drug discovery, translational research, biotechnology, pharmaceutical R&D, technology, or academic research.
- Experience leading or managing internal data scientists, computational biologists, bioinformaticians, or machine learning scientists in a matrix management environment as well as external collaborators
- Demonstrated ability to lead complex, hypothesis-driven scientific analyses using biological, multi-omics, or translational datasets, including RNA-seq, single-cell RNA-seq, proteomics, genomics, spatial biology, and/or imaging.
- Strong practical experience with scientific software development, reproducible analysis, workflow orchestration and collaborative development practices; experience in Python and/or R, with familiarity in tools such as GitHub, HuggingFace, workflow managers, Jupyter notebooks, containers
- Deep experience with cloud-based or enterprise-scale compute platforms, high-performance computing
- Significant experience influencing and collaborating across diverse scientific teams, including wet-lab biology, translational research, engineering, and computational functions.
- Familiarity with modern AI/ML methods and their application to biological or biomedical data (i.e. generative, agentic AI)
- Experience acquiring, curating, and engineering proprietary and public datasets while maintaining appropriate data governance, privacy, and security standards.
- Demonstrated ability to shape scientific strategy cross-functionally, influence senior stakeholders, and translate analytical results into portfolio-relevant decisions.
- Track record of scientific impact through publications, conference presentations, internal decision support, or portfolio contributions.
- Strong communication, interpersonal, ethical judgment, resilience, and self-awareness skills.
Benefits & conditions
The salary for this position is expected to range between $160,300 and $297,700 USD annually for Senior Principal Scientist, Data Science, and $176,400 and $327,600 USD annually for Associate Director, Data Science. The final salary offered is determined based on factors like, but not limited to, relevant skills and experience, and upon joining Novartis will be reviewed periodically. Novartis may change the published salary range based on company and market factors.
Your compensation will include a performance-based cash incentive and, depending on the level of the role, eligibility to be considered for annual equity awards.
US-based eligible employees will receive a comprehensive benefits package that includes health, life and disability benefits, a 401(k) with company contribution and match, and a variety of other benefits. In addition, employees are eligible for a generous time off package including vacation, personal days, holidays and other leaves.
About the company
Why Novartis: Helping people with disease and their families takes more than innovative science. It takes a community of smart, passionate people like you. Collaborating, supporting and inspiring each other. Combining to achieve breakthroughs that change patients’ lives. Ready to create a brighter future together? https://www.novartis.com/about/strategy/people-and-culture
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