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2025 Postdoctoral Research Associate - AI/machine learning for analytical and forensic chemistry at Princeton University – Princeton, New Jersey

Princeton University
Princeton, New Jersey, 08540, United States
Posted on
Updated on
Salary:$1.00 - $2.00/hrJob Function:Research

About This Position

2025 Postdoctoral Research Associate - AI/machine learning for analytical and forensic chemistry
D-25-LPB-00006 | Research | Ludwig Princeton Branch

The Skinnider Lab at Princeton University aims to recruit a postdoctoral fellow or more senior researcher to work on projects related to computational analysis of chemical and biochemical datasets. A major focus will be on the identification of small molecules from mass spectrometry-based metabolomics data, in part based on generative AI models of chemical structures. The position is available starting July 2025, and will remain open until excellent fits are found.

The successful candidate will develop and apply computational approaches to chemical datasets, with artificial intelligence/machine learning (AI/ML) being a major focus. Many of the laboratory's interests center around the identification of small molecules using mass spectrometry data, and the use of language models to predict the existence of undiscovered small molecules that are likely to be observed by mass spectrometry. Of particular interest for this position is the identification of emerging illicit drugs, also known as novel psychoactive substances, in seized drug products or clinical samples. The candidate will have the opportunity to work directly with experimentalists to validate predictions made by their machine-learning models, and to develop user-friendly tools that will be used by a broad community.

The scope of the work builds on recent publications from the laboratory, e.g. integrating language models with mass spectrometry data (https://www.nature.com/articles/s42256-021-00407-x, https://www.biorxiv.org/content/10.1101/2024.11.13.623458v1.abstract, https://www.nature.com/articles/s42256-024-00821-x, https://www.nature.com/articles/s42256-021-00368-1) or executing large-scale meta-analyses of mass spectrometric datasets (https://www.nature.com/articles/s41592-021-01194-4). The research is computational in nature but involves close interactions with experimental collaborators. Many of the problems are constrained by inherently low-quality or noisy data, and the successful candidate will be enthusiastic about contributing to data preprocessing and curation in addition to model development and evaluation.

This opportunity will prepare candidates for a range of competitive positions in academia or industry that involve computational biology/chemistry, machine-learning for biological or chemical data, and drug discovery/design. Mentorship is taken seriously and every effort will be made to ensure the candidate is able to achieve goals in the next stage of their career.

The successful candidate will be motivated, independent, and have strong written communication skills. Candidates are required to have experience in one or more of the following areas as demonstrated through at least one first-author publication: computational biology/bioinformatics, cheminformatics, analytical chemistry/mass spectrometry/metabolomics, or machine learning/computer science.

Term of appointment is based on rank. Positions at the postdoctoral rank are for one year with the possibility of renewal pending satisfactory performance and continued funding; those hired at more senior ranks may have multi-year appointments. Individuals should have or be expected to have a PhD with appropriate research experience in computational biology, chemistry, biochemistry, computer science, biological or chemical engineering, forensic science, or a related field. To apply online, please visit https://www.princeton.edu/acad-positions/position/38881 and submit a CV and cover letter. The cover letter should highlight 1-3 publications or preprints that you feel best address the requirement for experience in the above-mentioned areas. Please also include contact information for three references. Qualified candidates who pass an initial screening may be provided with short programming exercises to assess their skills. Only suitable candidates will be contacted.

The work location for this position is in-person on campus at Princeton University. This position is subject to Princeton University's background check policy.

Expected Salary Range: $65,000 - $70,000

The University considers factors such as (but not limited to) scope and responsibilities of the position, candidate's qualifications, work experience, education/training, key skills, market, collective bargaining agreements as applicable, and organizational considerations when extending an offer. The posted salary range represents the University's good faith and reasonable estimate for a full-time position; salaries for part-time positions are pro-rated accordingly.

The University also offers a comprehensive benefit program to eligible employees. Please see this link for more information.

Requisition No: D-25-LPB-00006

*Required information is denoted with an asterisk.

How to Apply

The form below must be completed to submit your application for this position.

It is recommended that you read through the entire application and gather the required application materials before beginning your application. You will not be
able to save or return to edit a partial application. Only complete applications will be accepted for consideration and the application form must be completed in its entirety before it can be submitted.

Upon submitting your application, you will receive a confirmation email at the email address that you provide in your application. In some cases, your references may be contacted using the email address that you provide for them and may be asked to provide their recommendation via a web-based form similar to the application form.

Be sure to provide the correct email addresses for you and all of your references to ensure that communications from Princeton University are properly delivered.

For more information send an email to ludwigcancer@princeton.edu.

Job Location

Princeton, New Jersey, 08540, United States

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