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Postdoctoral Fellow, AI/ML Applications for Vaccine
Pearl River, NY 10965
Direct Hire (Full Time)
On-site
Job Summary
- Job Title:
- Postdoctoral Fellow, AI/ML Applications for Vaccine
- Posted Date:
- Apr 10, 2026
- Duration:
- Direct Hire (Full Time)
- Shift(s):
-
09:00 - 18:00
- Salary ($):
- 64600.00 - 107600.00 per Yearly (compensation based on experience and qualifications)
- We care about you! Explore Rangam’s benefits information
Description
Rangam is seeking candidates for a Direct Hire role as a Postdoctoral Fellow, AI/ML Applications for Vaccine with our client Pfizer, one of the world’s largest pharmaceutical companies. Seeking candidates in Pearl River, NY willing to relocate.
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.
What You Will Achieve
In this role, working at the interface of viral genomics, antigenicity modeling, evolutionary forecasting, and deep learning, you will design, implement, and validate AI-driven models for prospective vaccine strain selection. More specifically, you will:
- Develop sequence-based deep learning models for rapidly evolving virus, including:
- transformer or language-model-based architectures for viral protein sequences and
- graph neural networks that predict time-dependent changes in strain dominance.
- Integrate multi-source surveillance, immunogenicity, and vaccine efficacy data to compute and evaluate prospective coverage scores for candidate vaccine strains.
- Utilize interpretation frameworks to identify key features for virus evolutional advantage related to infectious disease burden and vaccine antigen design.
- Conduct rigorous retrospective and prospective benchmarking validation. iterative fine-tuning to improve model performance
- Communicate complex data and results clearly to both technical and non-technical stakeholders. Collaborate extensively with those from other scientific disciplines within the group, from other subdivisions of Pfizer, and potentially from external partners.
- Publish impactful scientific findings while safeguarding confidential data, ensuring clear, transparent reporting of methods and results to facilitate reproducibility and recognition in peer-reviewed journals and conferences.
Minimum Requirements
- Ph.D. in Computational Biology, Bioinformatics, Computer Science, Machine Learning, or a closely related field.
- Demonstrated ability to independently design and implement complex ML models, evidenced by first-author publications or equivalent open-source research contributions.
- Strong hands-on experience with deep learning for sequence data, including
- transformer or language-model architectures, and
- model training, validation, and benchmarking on large biological datasets
- Proficiency in Python and modern ML frameworks (e.g., PyTorch, TensorFlow, scikit-learn), with experience managing full modelling pipelines and statistical modeling, including regression analysis and mixed-effects models.
- Experience working with viral or microbial sequence data, including alignment, curation, and longitudinal analysis across time.
- Less than 2 years of post-degree experience.
- Two letters of recommendation must be provided prior to interview.
- Willingness to make a minimum 2-year commitment.
- Strong communication and collaboration skills with the ability to work effectively in a hybrid team environment. Strong organizational skills and attention to detail in managing deadlines and documentation.
- Ability to clearly communicate complex modeling concepts and results to both technical and biological audiences.
Preferred Qualifications
- Direct experience with viral evolution modeling, fitness/dominance prediction, or time-resolved sequence forecasting.
- Experience building or extending protein language models or MSA-based neural networks for biological inference.
- Familiarity with antigenicity data or related experimental measurements, and how such data can be integrated into machine learning models
- Knowledge of SHAP or similar model interpretation frameworks for feature attribution in complex models.
- Prior work on influenza, SARS-CoV-2, or other rapidly evolving viruses, particularly in the context of immune escape, antigenic drift, or vaccine design.
Additional Information
- Relocation support available
- Location: On premise

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
It is the policy of Rangam Consultants, Inc. to provide equal employment opportunities to all applicants and employees without regard to any legally protected status such as race, color, religion, gender, national origin, age, disability or veteran status.
To find out more about Rangam and this role, click the apply button.
As part of our recruitment process, we may use automated tools or AI-enabled technologies to assist with resume screening and candidate matching. These tools help our recruitment team review applications more efficiently, but they do not make hiring decisions. All final decisions are made by human reviewers.