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  • Associate Director - AI/ML (R&D)

    Takeda Pharmaceuticals (Boston, MA)



    Apply Now

    By clicking the “Apply” button, I understand that my employment application process with Takeda will commence and that the information I provide in my application will be processed in line with Takeda’s Privacy Notice and Terms of Use . I further attest that all information I submit in my employment application is true to the best of my knowledge.

    Job Description

    At Takeda, we are a forward-looking, world-class R&D organization that unlocks innovation and delivers transformative therapies to patients. By focusing R&D efforts on three therapeutic areas and other targeted investments, we push the boundaries of what is possible to bring life-changing therapies to patients worldwide.

    Objective / Purpose:

    Takeda is seeking an Associate Director to join our AI/ML & Data team in Boston, MA. This technical role focuses on implementing AI-driven drug discovery solutions across Takeda's key therapeutic areas and modalities, including small molecules and biologics. As a technical expert within our computational biology, chemistry, and data teams, you will build and deploy state-of-the-art AI/ML technologies and mathematical models to accelerate target identification, validation, and drug discovery workflows. This execution-focused role offers the opportunity to develop advanced AI platforms and implement novel approaches, such as agentic systems and reasoning models, to enhance discovery efforts across oncology, neuroscience, and inflammatory diseases.

    Accountabilities:

    + Build AI Solutions for Target Discovery: Develop and deploy AI/ML systems for target identification and validation in oncology, neuroscience, and GI² initiatives for small molecules and biologics. Process and analyze large-scale datasets to uncover novel therapeutic opportunities and biomarkers.

    + Engineer Agentic Systems & Reasoning Models: Create and implement advanced AI systems, including agentic AI (e.g., multi-agent models, reinforcement learning) to automate hypothesis generation, experimental design, and data analysis, enabling efficient small molecule and biologic drug discovery.

    + Develop AI-Integrated Tools: Build and maintain AI/ML models that integrate biological, chemical, and omics data, ensuring computational outputs provide actionable insights for drug optimization.

    + Implement Machine Learning Models: Code and deploy state-of-the-art machine learning algorithms, including deep learning, graph-based models, and active learning approaches, to power in silico screening, molecule design, and biological predictions for oncology, neuroscience, and GI² drug discovery.

    + Build Knowledge Graphs & Foundation Models: Develop and maintain knowledge graph technologies and foundation models (e.g., language models) that integrate diverse data sources (omics, literature), supporting scientific reasoning and hypothesis testing across drug discovery workflows.

    + Execute Cross-Functional Deliverables: Collaborate with computational biology, chemistry, and digital sciences teams to implement AI solutions within experimental workflows. Ensure model outputs are production-ready and provide tangible insights across oncology, small molecule, biologics, and GI² initiatives.

    + Develop AI Research Tools: Create and optimize AI-enhanced research tools for small molecule and biologic discovery. Build novel AI/ML implementations that can generate intellectual property.

    + Technical Mentorship: Provide practical technical guidance to team members, demonstrating best practices in coding, model development, and AI implementation across Takeda.

    + Technical Documentation & Communication: Document AI system architectures and model implementations effectively. Present technical solutions to scientific stakeholders to support decision-making across Takeda's R&D efforts.

    + Educational Background: Ph.D. in Computer Science, Data Science, AI, Computational Biology, or related field preferred (or M.S. with significant relevant experience). Strong practical coding skills and proven experience building AI/ML systems for drug discovery.

    + Technical AI/ML Expertise: 8+ years of experience building and deploying AI/ML or mathematical modeling solutions for drug discovery challenges. Demonstrated success implementing production-level systems independently. Direct experience coding novel AI systems (e.g., agentic systems, reasoning models) is highly advantageous.

    + Proven Development Track Record: Extensive experience writing production code for machine learning systems (e.g., deep learning, reinforcement learning, graph models, active learning) in drug discovery settings.

    + Applied Computational Experience: Practical experience implementing AI/ML models for small molecule and biologic drug discovery, with proven ability to create functional tools that translate computational outputs into experimental insights. Experience in oncology, neuroscience or GI² therapeutic areas is advantageous.

    + Technical Stack Expertise: Advanced proficiency in Python, with experience building on cloud platforms (AWS, Azure, or GCP), and implementing solutions using machine learning frameworks (e.g., TensorFlow, PyTorch).

    + Execution & Collaboration: Track record of successfully delivering AI/ML projects from concept to production within cross-functional teams. Demonstrated ability to implement working solutions that drive drug discovery programs.

    + Technical Innovation & Documentation: History of developing novel AI implementations in scientific research, coupled with strong abilities to document and explain technical architectures to diverse audiences across the organization.

    EDUCATION, BEHAVIOURAL COMPETENCIES AND SKILLS:

    + PhD degree in a Computer Science, Data Science, AI, Computational Biology, or related field preferred with 7+ years experience , or MS with 13+ years experience, or BS with 15+ years experience

    + Strong practical coding skills and proven experience building AI/ML systems for drug discovery

    + Technical AI/ML Expertise: preferably 8+ years of experience building and deploying AI/ML or mathematical modeling solutions for drug discovery challenges. Demonstrated success implementing production-level systems independently. Direct experience coding novel AI systems (e.g., agentic systems, reasoning models) is highly advantageous.

    + Proven Development Track Record: Extensive experience writing production code for machine learning systems (e.g., deep learning, reinforcement learning, graph models, active learning) in drug discovery settings.

    + Applied Computational Experience: Practical experience implementing AI/ML models for small molecule and biologic drug discovery, with proven ability to create functional tools that translate computational outputs into experimental insights. Experience in oncology, neuroscience or GI² therapeutic areas is advantageous.

    + Technical Stack Expertise: Advanced proficiency in Python, with experience building on cloud platforms (AWS, Azure, or GCP), and implementing solutions using machine learning frameworks (e.g., TensorFlow, PyTorch).

    + Execution & Collaboration: Track record of successfully delivering AI/ML projects from concept to production within cross-functional teams. Demonstrated ability to implement working solutions that drive drug discovery programs.

    + Technical Innovation & Documentation: History of developing novel AI implementations in scientific research, coupled with strong abilities to document and explain technical architectures to diverse audiences across the organization.

     

    If you are ready to be part of a forward-thinking, engineering-driven team at Takeda, contributing to transformative innovations in drug discovery through technical implementation, we encourage you to apply for this Associate Director role.

     

    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

     
     

    $153,600.00 - $241,340.00

     

    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.

     
     

    EEO Statement

     

    _Takeda is proud in its commitment to creating a diverse workforce and providing equal employment opportunities to all employees and applicants for employment without regard to race, color, religion, sex, sexual orientation, gender identity, gender expression, parental status, national origin, age, disability, citizenship status, genetic information or characteristics, marital status, status as a Vietnam era veteran, special disabled veteran, or other protected veteran in accordance with applicable federal, state and local laws, and any other characteristic protected by law._

     

    Locations

     

    Boston, MA

     

    Worker Type

     

    Employee

     

    Worker Sub-Type

     

    Regular

     

    Time Type

     

    Full time

     

    Job Exempt

     

    Yes

     

    It is unlawful in Massachusetts to require or administer a lie detector test as a condition of employment or continued employment. An employer who violates this law shall be subject to criminal penalties and civil liability.

     


    Apply Now



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