Data Science Fellow - AI/NLP
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About the Role
Axle is a bioscience and information technology company that offers advancements in translational research, biomedical informatics, and data science applications to research centers and healthcare organizations nationally and abroad. With experts in biomedical science, software engineering, and program management, we focus on developing and applying research tools and techniques to empower decision-making and accelerate research discoveries. We work with some of the top research organizations and facilities in the country including multiple institutes at the National Institutes of Health (NIH).
Benefits We Offer:
- 100% Medical, Dental & Vision Coverage for Employees
- Paid Time Off and Paid Holidays
- 401K match up to 5%
- Educational Benefits for Career Growth
- Employee Referral Bonus
- Flexible Spending Accounts:
- Healthcare (FSA)
- Parking Reimbursement Account (PRK)
- Dependent Care Assistant Program (DCAP)
- Transportation Reimbursement Account (TRN)
We are seeking a postdoctoral researcher to develop AI/NLP and knowledge engineering methods that transform biomedical literature, experimental protocols, and source evidence into structured, quarriable, and evidence-grounded knowledge for organoid protocol standardization and optimization.
The postdoc will work at the intersection of large language models, biomedical NLP, scientific document understanding, knowledge graphs, ontology grounding, computational biology, and human-in-the-loop curation. Potential projects include LLM-based protocol extraction, retrieval-augmented literature mining, curated knowledge graph construction, ontology and entity normalization, protocol comparison, consensus protocol derivation, benchmark design, and natural-language interfaces over structured biological knowledge.
Cover Letter Required — Please Answer the Following Questions
To be considered for this position, please upload a document as your Cover Letter that answers the six questions below. Applications submitted without this document will not be considered.
- What experience do you have working with large datasets and compute clusters?
- Describe your experience building workflows/pipelines and/or using bioinformatics software and tools to analyze data.
- What programming languages are you comfortable using for bioinformatics data analysis?
- What bioinformatics areas are you familiar with? (e.g., single cell, bulk genomics, transcriptomics, epigenetics, flow, spatial, metagenomics, etc.)
- What life science disciplines do you have experience in? (e.g., immunology, infectious disease, cancer research, etc.)
- Provide examples of basic machine learning/AI concepts and/or how you've applied them in bioinformatics data analysis.
Responsibilities
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Design and implement AI/NLP methods for biomedical literature mining and structured protocol knowledge extraction.
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Develop benchmark datasets, annotation guidelines, and evaluation pipelines for scientific information extraction.
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Build and evaluate RAG, in-context learning, fine-tuning, graph matching, entity normalization, and KG query workflows.
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Analyze extraction errors, model behavior, retrieval failures, grounding quality, and biological ambiguity.
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Collaborate with software engineers to integrate research methods into usable tools and reproducible pipelines.
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Collaborate with organoid biologists and domain experts to translate biological protocol knowledge into computable representations.
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Prepare manuscripts, conference abstracts, technical reports, design documents, and open-source research artifacts.
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Help define research milestones, evaluation criteria, and publication strategy for protocol intelligence work.
Required Qualifications
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