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Director and Group Head (Scientific Innovation), AI and Computational Sciences

Novartis Group Companies
401(k)
United States, Massachusetts, Cambridge
Nov 08, 2025

Job Description Summary

Novartis has embraced a bold strategy to drive a company-wide digital transformation. Our objective is to position Novartis as an industry leader by proactively adopting digital technologies that foster innovative approaches to hasten drug discovery and development. By utilizing both internal and external R&D data with the power of data science, predictive models, generative AI, and machine learning, our objective is to identify new targets, create more effective therapeutic molecules, better predict drug pharmacokinetics and safety risks, refine clinical trial design, and significantly shorten development cycles. The AICS team leads Biomedical Research(BR) in exploring and applying advanced AI and ML methodologies to generate novel drug discovery insights, and to speed and improve drug discovery efficiency whilst focusing on patients' needs.

AICS partners with drug discovery teams, raises the level of AI expertise across Biomedical Research (BR) and ensures that BR science keeps up with the rapidly evolving ecosystem of AI technologies by connecting with AI leaders in academia and industry.

This role leads the Scientific Innovation group within AICS and is tasked with leading a group of scientists with significant domain expertise in biomedical research along with being AI-native, and also act as the primary SME liaison of AICS to BR Disease Areas (DAs) and Function Areas (FAs).

Job Description

Key Responsibilities

Scientific Innovation Group Lead:

  • Lead a team of AI researchers who also bring significant domain area expertise

  • Work with AI modelers to ensure models are robust and performant

  • Work with Engineering and Product Development resources to ensure delivery of AI solutions

  • Raise the awareness of AI applications to aid in answering key research questions across Biomedical Research

  • Help position AI-aided drug discovery contributions to deliver and support progress of Biomedical Research's portfolio, enable new kinds of therapeutic discoveries, shorten cycle times, and increase efficiency.

Collaboration & partnership

  • Act as the primary liaison as a subject matter expert for AICS, for identification of research questions, solution design, and evangelism of results and impacts of AI across Biomedical Research

  • Regularly communicate, engage, align with AICS teams, broader data science community, and senior scientists.

  • Initiate and lead key high-value internal collaborations across Biomedical Research.

  • Help to design translatable metrics for AI models that will lead to tangible impact in collaboration with BR DAs and FAs.

Essential Requirements:

  • 10+ years of significant experience in innovation, development, deployment and continuous support of Machine Learning data management and modeling
  • Expertise in bringing advanced analytics insights and actions to a large Research organization & deep understanding of Drug development
  • Passion for understanding emerging technologies with pragmatic insight into where those technologies can be integrated into business solutions
  • Ability to balance requirements, manage expectations, and drive effective results using a proactive attitude towards identifying and resolving issue
  • Entrepreneurial spirit with can-do, pro-active attitude
  • Strong organizational, problem-solving, and influencing skills and demonstrated track record of exceptional teamwork
  • Excellent interpersonal, communication, and presentation skills

  • Ability to execute and prioritize well in a complex matrixed environment.

  • Operational and functional leadership

Novartis Compensation Summary:
The salary for this position is expected to range between $194,600 and $361,400 per year.
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.
To learn more about the culture, rewards and benefits we offer our people click here

EEO Statement:

The Novartis Group of Companies are Equal Opportunity Employers. We do not discriminate in recruitment, hiring, training, promotion or other employment practices for reasons of race, color, religion, sex, national origin, age, sexual orientation, gender identity or expression, marital or veteran status, disability, or any other legally protected status.

Accessibility and reasonable accommodations

The Novartis Group of Companies are committed to working with and providing reasonable accommodation to individuals with disabilities. If, because of a medical condition or disability, you need a reasonable accommodation for any part of the application process, or to perform the essential functions of a position, please send an e-mail to us.reasonableaccommodations@novartis.com or call +1(877)395-2339 and let us know the nature of your request and your contact information. Please include the job requisition number in your message.

Salary Range

$194,600.00 - $361,400.00

Skills Desired

Applied Mathematics, Artificial Intelligence (AI), Aws (Amazon Web Services), Big Data, Building Construction, Cloud Computing, Computer Science, Data Governance, Data Literacy, Data Management, Data Quality, Data Science, Data Strategy, Electrical Transformer, Machine Learning (Ml), Master Data Management, Professional Services, Python (Programming Language), R (Programming Language), Random Forest Algorithm, Statistical Analysis, Time Series Analysis
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