Takeda

Head of Methods & AI Integration

Takeda$259K — $407K *
Pharmaceuticals & Biotech
11 - 15 years of experience
Job Overview by Ladders

Qualifications

  • PhD in Statistics, Data Science, or a quantitative field with ~15+ years of experience, including leadership in pharma/biotech.
  • MS in Statistics, Data Science, or a quantitative field with ~18+ years of equivalent experience and a solid track record in enterprise-scale capabilities.
  • Deep expertise in AI/ML and modern analytic approaches with technical authority in methods strategy within R&D.
  • Experience selecting and standardizing methods that optimize drug R&D success rates.
  • Strong knowledge of model validation and lifecycle management within regulated environments.
  • Ability to establish networks and lead strategic collaborations across diverse sectors, including academia and regulators.
  • Capacity to drive AI-enabled transformation and influence decision-making across global organizations.

Responsibilities

  • Define and scale AI/ML methodologies into decision capabilities across R&D.
  • Lead integration of AI into clinical development, moving from pilot to standard tools.
  • Create a quantitative decision-making backbone enhancing decision quality and speed
  • Embed advanced methods in key R&D decisions like trial design and Go/No-Go assessments.
  • Implement an enterprise governance framework for methods and AI alignment and standardization.
  • Establish rigorous standards for model validation and lifecycle management.
  • Build and manage a high-impact, multi-disciplinary team focused on AI and quantitative science.

Benefits

  • Comprehensive health and wellness benefits package.
  • Opportunities for professional development and continuous learning.
  • Flexible work arrangements that promote work-life balance.
  • Supportive corporate culture encouraging innovation and collaboration.
  • Access to employee resource groups fostering diversity and inclusion.
Full Job Description
Job Description

About the role:

The Head of Methods & AI Integration is a senior leadership role within R&D Data and Quantitative Sciences (DQS), reporting to the Head of DQS. This role sits at the intersection of methodological innovation, AI/ML and enterprise-scale deployment within DQS. Unlike traditional functional leadership, it is accountable for translating fragmented AI/ML and quantitative advances into standardized, regulator-ready capabilities adopted consistently across all therapeutic areas and R&D functions.

The Head of Methods & AI Integration will apply a relentless focus on scaling impact - moving innovation from pilot to enterprise deployment - and the integration of data and quantitative science depth with AI/ML and engineering fluency to build a scalable quantitative decision-making backbone for R&D. The role demands credibility with regulators and external scientific communities alongside the operating discipline to govern reproducible, auditable, GxP-ready methods.

Specific areas of accountability for this position include:

  • Defining, integrating, and scaling advanced data & quantitative science and AI/ML methodologies into decision-grade capabilities across R&D, embedding methodological innovation into clinical development workflows, governance, and decision-making rather than delivering isolated pilots.


  • Owning the end-to-end lifecycle from innovation to enterprise adoption, transforming fragmented AI and methodological advances into standardized, reusable, regulator-ready capabilities that materially improve decision quality, speed, and development outcomes.


  • Acting as the critical bridge between innovation, methods, and execution, enabling DQS to deliver a scalable quantitative decision-making backbone across R&D.


  • Positioning DQS as a global leader in AI-enabled clinical development and decision science through internal enablement and external engagement with regulators, academia, and consortia.


How you will contribute:

  • Serves as a member of the DQS Leadership Team, influencing future strategy and operations with DQS and more broadly across the R&D enterprise R&D framing the quantitative decision-making backbone that underpins portfolio-wide decision quality, consistency, and speed.


  • Define and own the DQS methods strategy spanning data and quantitative science innovation, AI/ML, and decision science, establishing next-generation methodologies for clinical trial design and optimization (e.g., simulation, adaptive designs) and AI-enabled decision-making (e.g., GenAI, causal ML, digital twins, evidence synthesis).


  • Lead the systematic integration of AI/ML into clinical development workflows, shifting from pilot use to embedded, standardized capabilities delivered as reusable tools, frameworks, playbooks, and decision-support systems.


  • Own the end-to-end lifecycle (innovation  validation  deployment  scale), ensuring solutions are decision-ready, reproducible, governed, and deployable in GxP/regulated environments, and eliminating pilot-only efforts through repeatable scaling pathways.


  • Embed advanced methods into core R&D decisions - Go/No-Go, trial design and simulation, and portfolio strategy and trade-offs - enabling consistent, transparent, and portfolio-comparable decision frameworks across therapeutic area units (TAUs).


  • Define and implement the enterprise methods and AI governance framework, including model qualification, regulatory alignment, and standards for reproducibility, documentation, and auditability, driving standardization and reuse to reduce fragmentation and bespoke approaches across programs.


  • Establish standards for model validation, method qualification, deployment readiness, and lifecycle management that are scientifically rigorous, transparent, and fit for regulatory purpose.


  • Build and lead a high-impact, multi-disciplinary team across AI/ML methods, advanced data and quantitative science methodology, decision science, and translation/enablement, operating a hub-and-spoke model in partnership with SQS, QPTS, PSPV, and DD&T, etc.


  • Engage regulators, academia, and consortia to shape methodological and AI standards and advance acceptance of AI-driven approaches in regulated environments, positioning DQS as a global leader in AI-enabled decision science.


  • Drives impact on development success rates (PTRS), trial efficiency and design optimization, and reduced attrition and development timelines.


  • Enhances Takedas external influence on regulatory and scientific standards for AI-enabled clinical development and decision science.


Preferred Qualifications:

  • PhD in Statistics, Data Science, or other quantitative field with ~15+ years of experience, including extensive leadership in quantitative sciences in pharma/biotech and in AI/ML or advanced analytics in regulated environments.


  • MS in Statistics, Data Science, or other quantitative field with ~18+ years of equivalent experience, with a proven track record of translating innovation into enterprise-scale capabilities and driving cross-functional transformation across R&D.


  • Deep expertise in data and quantitative science methodology and in AI/ML and modern analytic approaches, with the technical authority to set and drive functional methods strategy across R&D.


  • Experience owning accountability for methodology decision-making - selecting, qualifying, and standardizing methods that optimize the likelihood of drug R&D success.


  • The ability to identify and create the technical and methodological strategic vision and implement long-term innovation aligned with global regulatory and payer expectations, GxP environments, and trends.


  • Strong command of model validation, governance, and lifecycle management, ensuring methods and AI capabilities are reproducible, auditable, and fit for regulatory purpose at scale across R&D.


  • The capability to establish external networks and lead strategic DQS and R&D collaborations across industry, government, regulators, and academia to advance acceptance of AI-driven approaches.


  • Operate with an enterprise mindset, focused on scaling impact rather than isolated innovation.


  • Create and develop complex, multi-functional methods and AI strategy and mobilize organizations across R&D to adopt it.


  • Bridge science, technology, and business decision-making, and influence across global, matrixed organizations.


  • Act as a strong change agent and decision maker driving AI-enabled transformation across R&D.


Takeda Compensation and Benefits Summary

We understand compensation is an important factor as you consider the next step in your career. We are committed to equitable pay for all employees, and we strive to be more transparent with our pay practices.

For Location:
Boston, MA

U.S. Base Salary Range:
$259,000.00 - $407,000.00

The estimated salary range reflects an anticipated range for this position. The actual base salary offered may depend on a variety of factors, including the qualifications of the individual applicant for the position, years of relevant experience, specific and unique skills, level of education attained, certifications or other professional licenses held, and the location in which the applicant lives and/or from which they will be performing the job. The actual base salary offered will be in accordance with state or local minimum wage requirements for the job location.

For information about our benefits, please click here.

Locations
Boston, MA

Worker Type
Employee

Worker Sub-Type
Regular

Time Type
Full time

Job Exempt
Yes

About Takeda

Takeda Pharmaceutical Company Limited is a global pharmaceutical company that develops and markets pharmaceutical products. The company's products are used to treat a wide range of medical conditions, including cardiovascular and metabolic diseases, respiratory diseases, and cancer. Takeda Pharmaceutical Company Limited was founded in 1781 and is headquartered in Tokyo, Japan. The company has operations in more than 80 countries and employs more than 49,000 people worldwide.
Learn more about Takeda
Size
47,347 employees
Market Cap
$48.2 billion
Industry
Founded
1781
5 Year Trend
+15.6%
NASDAQ

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