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Pfizer

Postdoctoral Fellow Generative AI for Antibody Engineering

Posted Yesterday
Be an Early Applicant
Hybrid
Cambridge, MA, USA
65K-108K Annually
Internship
Hybrid
Cambridge, MA, USA
65K-108K Annually
Internship
Conduct research in computational antibody engineering, develop ML methods for antibody optimization, collaborate in a multidisciplinary environment, and publish findings.
The summary above was generated by AI
Use Your Power for Purpose
At Pfizer, our purpose is to deliver breakthroughs that transform patients' lives. Central to this mission is our Research and Development team, which strives to convert advanced science and cutting-edge technologies into impactful therapies and vaccines. Whether you are engaged in discovery sciences, ensuring drug safety and efficacy, or supporting clinical trials, your role is crucial. You will leverage innovative design and process development capabilities to expedite the delivery of top-tier medicines to patients globally.
Role Summary
Pfizer's Machine Learning Computational Sciences (MLCS) group is seeking a highly motivated Postdoctoral Scholar to conduct independent and collaborative research in computational antibody design and optimization. This position focuses on the development and application of modern computational and machine‑learning-based approaches to accelerate the discovery of next-generation biologic therapeutics. The role sits at the intersection of machine learning, protein science, and therapeutic discovery, ideal for candidates eager to translate foundational AI research into real-world drug design while supporting scientific publication and professional development. The selected postdoc will join a cohort of other AI-focused postdoctoral researchers working on a variety of R&D topics. This community offers opportunities for peer mentorship and exposure to diverse applications of machine learning in discovery and development.
What You Will Achieve
In this role, you will:
  • Conduct original research in computational antibody engineering, with an emphasis on sequence- and structure-based generative modeling.
  • Develop and deploy state-of-the-art ML methods for multi-objective, constraint-aware antibody optimization balancing affinity, stability and developability.
  • Apply proprietary computational framework and ML models for antibody developability engineering.
  • Communicate research findings through manuscripts, conference presentations, and internal seminars.
  • Collaborate with computational and experimental researchers in a multidisciplinary research environment.

Here Is What You Need (Minimum Requirements):
  • Ph.D. degree in computational chemistry, physical or biological sciences, chemical engineering, computer science, or related discipline.
  • Less than 2 years of post-degree experience.
  • Willingness to make a minimum 2-year commitment.
  • Successful record of scientific accomplishments evidenced by scientific publications and/or presentations with at least one first-author publication in a peer-reviewed journal.
  • Two letters of recommendation are also required prior to interview stage.
  • Strong background in protein language models and structure-aware generative models.
  • Experience programming in Python and using modern scientific or machine learning libraries (e.g., NumPy/SciPy, scikit-learn, PyTorch), including training and evaluation workflows.
  • Experience with reinforcement learning, Bayesian optimization, or other advanced multi-objective optimization techniques.
  • Experience with compute-intensive ML workloads, including GPU acceleration and HPC environments (e.g., Slurm), performance debugging, and reproducible experiment management.
  • Demonstrated ability to conduct independent research and produce publishable scientific work.

Bonus Points If You Have (Preferred Requirements):
  • Prior experience or demonstrated interest in antibody design or protein engineering.
  • Experience fine‑tuning foundation models using small and biased datasets.
  • Familiarity with antibody developability properties is highly desirable.
  • Experience training and deploying models in cloud environments (e.g., AWS, or GCP), including containers (Docker), orchestration (Kubernetes), and basic MLOps practices (versioning, CI/CD, monitoring).

Additional Information
  • Work Location Assignment: On Premise
  • Last day to apply April 30th, 2026
The annual base salary for this position ranges from $64,600.00 to $107,600.00. In addition, this position is eligible for participation in Pfizer's Global Performance Plan with a bonus target of 7.5% of the base salary. We offer comprehensive and generous benefits and programs to help our colleagues lead healthy lives and to support each of life's moments. Benefits offered include a 401(k) plan with Pfizer Matching Contributions and an additional Pfizer Retirement Savings Contribution, paid vacation, holiday and personal days, paid caregiver/parental and medical leave, and health benefits to include medical, prescription drug, dental and vision coverage. Learn more at Pfizer Candidate Site - U.S. Benefits | (uscandidates.mypfizerbenefits.com). Pfizer compensation structures and benefit packages are aligned based on the location of hire. The United States salary range provided does not apply to Tampa, FL or any location outside of the United States.
Relocation assistance may be available based on business needs and/or eligibility.
Candidates must be authorized to be employed in the U.S. by any employer.
U.S. work visa sponsorship (such as TN, O-1, H-1B, etc.) is not available for this role now or in the future.
Sunshine Act
Pfizer reports payments and other transfers of value to health care providers as required by federal and state transparency laws and implementing regulations. These laws and regulations require Pfizer to provide government agencies with information such as a health care provider's name, address and the type of payments or other value received, generally for public disclosure. Subject to further legal review and statutory or regulatory clarification, which Pfizer intends to pursue, reimbursement of recruiting expenses for licensed physicians may constitute a reportable transfer of value under the federal transparency law commonly known as the Sunshine Act. Therefore, if you are a licensed physician who incurs recruiting expenses as a result of interviewing with Pfizer that we pay or reimburse, your name, address and the amount of payments made currently will be reported to the government. If you have questions regarding this matter, please do not hesitate to contact your Talent Acquisition representative.
EEO & Employment Eligibility
Pfizer is committed to equal opportunity in the terms and conditions of employment for all employees and job applicants without regard to race, color, religion, sex, sexual orientation, age, gender identity or gender expression, national origin, disability or veteran status. Pfizer also complies with all applicable national, state and local laws governing nondiscrimination in employment as well as work authorization and employment eligibility verification requirements of the Immigration and Nationality Act and IRCA. Pfizer is an E-Verify employer. This position requires permanent work authorization in the United States.
Pfizer endeavors to make www.pfizer.com/careers accessible to all users. If you would like to contact us regarding the accessibility of our website or need assistance completing the application process and/or interviewing, please email [email protected] . This is to be used solely for accommodation requests with respect to the accessibility of our website, online application process and/or interviewing. Requests for any other reason will not be returned.
Research and Development

Top Skills

Docker
Kubernetes
Numpy
Python
PyTorch
Scikit-Learn
Scipy

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