What the agency is buying
by RFPFinder from the notice; the solicitation governsThe National Institutes of Health (NIH) intends to procure AI and Data Science Specialist support for the Health and Extreme Weather Intramural study. The contract will be awarded to the University of Maryland, College Park, and will be evaluated based on best value.
Scope
- Artificial Intelligence (AI) and Data Science Specialist support for the NIH Health and Extreme Weather Intramural study
- Technical consultation and study support related to research questions, data feasibility, analytical approaches, and study/evaluation design
1 signal behind this label (incumbent, repeat winner, short window, brand-name or sole-source language, prior sources sought). Pro shows them with sources.
From USAspending awards and the notice text, recomputed nightly (Oct 7). A signal, not a verdict.
How to get the bid documents
- Open the notice on SAM.gov
- Read the notice; the source lists no attachments
- Submit by email before 6:00 AM ET on Oct 8
The source notice lists no attachments.
Open the original listing on SAM.govDetails
- Place of performance
- BETHESDA, Maryland
- Buyer type
- Federal
- Notice type
- Presolicitation
- Solicitation no.
- 27-000165
- Category
- Consulting · beta
- Delivery location
- University of Maryland, College Park, Maryland from notice
- Period of performance
- October 15, 2026 - October 14, 2028 from notice
- Contract type
- IDIQ from notice
- Evaluation
- Best value tradeoff (FAR 15) from notice
- Local presence
- Not required
- Amendments
- 2, last Oct 7
- Contact
- Shasheshe Goolsby
- Office
- NATIONAL INSTITUTES OF HEALTH · NATIONAL INSTITUTES OF HEALTH OLAO
- Phone
- 3018274879
Not stated in the notice: estimated value. Check the bid documents.
Contact details from the source notice. Contact the buyer only about this solicitation.
Key dates
- Amendment 1
- Mon, Oct 5
- Amendment 2
- Wed, Oct 7 · The original procurement notice has been updated with additional details about the project, including the study's objectives and the required technical support.
Change log
verified Wed, Oct 7 · 12:30 AM ET- Posted · PresolicitationTue, Sep 29 · 9:33 AM ET
- Amendment · New version of the notice posted at the sourceMon, Oct 5 · 8:19 AM ET
- Updated · description text changedWed, Oct 7 · 12:30 AM ET
- Amendment · The original procurement notice has been updated with additional details about the project, including the study's objectives and the required technical support.Wed, Oct 7 · 12:30 AM ET
Report a problem
Notice as published
AI and Data Science Specialist Support Health and Extreme Weather Project
Title: AI and Data Science Specialist Support Health and Extreme Weather Project Agency: Department of Health and Human Services (HHS) Sub-Agency: National Institutes of Health (NIH), Clinical Center (CC) Department: Critical Care Medicine Department (CCMD), Clinical Epidemiology Section NAICS Code: 541715 Research and Development in the Physical, Engineering, and Life Sciences (except Nanotechnology and Biotechnology) PSC: R425 SupportProfessional: Engineering/Technical Intended Source: University of Maryland, College Park (UMD), Department of Electrical and Computer Engineering Place of Performance: University of Maryland, College Park, Maryland Period of Performance: Period 1:
Earlier updates (2)
October 15, 2026 October 14, 2027 Period 2:
October 15, 2027 October 14, 2028 Response Deadline: October 5, 2026, at 1:30 PM Eastern Time (ET) DESCRIPTION The National Institutes of Health (NIH), Clinical Center (CC), Critical Care Medicine Department (CCMD), Clinical Epidemiology Section intends to procure specialized Artificial Intelligence (AI) and Data Science Specialist support for the NIH Health and Extreme Weather Intramural study. The Health and Extreme Weather study is a two-year project examining whether emergency department and hospital overcrowding worsens during extreme heat and how these conditions affect mortality. The project also seeks to apply artificial intelligence, including large language models (LLMs), to Emergency Medical Services (EMS) free-text narratives to identify patients with heat exposure that may not be captured through structured coding.
The requirement involves specialized technical support in artificial intelligence, machine learning, large language models, data science, and analysis of large and heterogeneous healthcare datasets. Required support may include, but is not limited to: Technical consultation and study support related to research questions, data feasibility, analytical approaches, and study/evaluation design; Data preparation, exploratory analysis, information extraction, and development or adaptation of AI, machine-learning, and LLM methods; AI/LLM prototyping, prompting, fine-tuning, workflow development, and comparison of alternative modeling approaches; Evaluation design, reference-data development, performance assessment, error analysis, and generalizability and robustness testing; Development and evaluation of scalable machine-learning pipelines and model-evaluation frameworks; and Preparation of technical summaries, analyses, methods descriptions, figures, reports, presentations, and manuscripts as required by the project. INTENDED SOURCE The Government intends to procure these services from the University of Maryland, College Park (UMD), Department of Electrical and Computer Engineering.
The Government's market research indicates that UMD possesses the specialized technical expertise required to support this effort. The proposed technical specialist possesses Ph.D.-level expertise in Electrical and Computer Engineering/Computer Science, with demonstrated experience in large-scale AI and foundation/language-model development and evaluation, scalable machine-learning pipelines, information extraction from unstructured text, and rigorous model-validation methodologies. The NIH Clinical Center's Critical Care Medicine Department also has an ongoing machine-learning/AI effort with the same UMD contractor.
The Government intends to leverage the iterative learning, technical knowledge, and core algorithms already developed through that effort in support of this new AI requirement. This continuity is expected to reduce duplication of effort, conserve Government resources, and facilitate timely execution of the Health and Extreme Weather study. UMD's proximity to NIH also facilitates in-person technical collaboration and integration between the NIH Clinical Center's Clinical Epidemiology Section and UMD's AI/ML expertise.
NOTICE OF INTENT This notice is not a request for competitive proposals or quotations. The Government intends to procure the required services from the University of Maryland, College Park. However, all responsible sources that believe they possess the specialized technical capabilities necessary to satisfy the Government's requirement may submit a capability statement for consideration.
Interested parties must provide sufficient information demonstrating their ability to perform the complete requirement. At a minimum, capability statements should address: Company/organization name, address, Unique Entity ID (UEI), and point of contact; Business size and socioeconomic status under NAICS 541715; Demonstrated Ph.D.-level expertise in Electrical and Computer Engineering, Computer Science, or a closely related discipline; Demonstrated experience developing and evaluating large-scale AI, machine-learning, foundation-model, and/or large-language-model technologies; Demonstrated experience developing scalable machine-learning pipelines and rigorous model-evaluation frameworks; Experience applying AI/ML methods to healthcare, clinical, EMS, or other large heterogeneous datasets; Experience performing information extraction from unstructured text and evaluating model generalizability and robustness; and Sufficient information demonstrating the ability to satisfy the requirement within the required period of performance. Capability statements must be received no later than October 8, 2026, at 6:00 AM Eastern Time (ET) and emailed to [email on the source notice].
Telephone calls are not acceptable. Information received will be considered solely for the purpose of determining whether conducting a competitive procurement is appropriate. A determination by the Government not to compete this proposed acquisition based upon responses to this notice is solely within the discretion of the Government. .
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