About the Role

ML Research Resident

Elicit is building a research agent that can use an unlimited amount of test-time compute while keeping its reasoning transparent and verifiable.

The residency

Transformers do a fixed amount of computation per token, and the quality of work degrades rapidly when they are applied iteratively. As research resident, you'll work with us for 3 months on developing computational procedures (operators) that can reliably improve a knowledge state over thousands of iterations.

What is a knowledge state? A knowledge state consists of structured information - for example, a scientific paper might be represented as a set of claims supported by evidence and connected through logical reasoning; this might be combined with scratchpads, evergreen “notes to self”, search trees, and other information.

What counts as improvement? Like scientists, we want LLMs to make genuine progress in understanding - separating inferences from raw evidence, finding connections between ideas, building clearer explanations, and identifying gaps in reasoning. But unlike typical ML systems that are often trained to do “whatever works”, we need improvements that are epistemically sound - each step should make the knowledge state more useful while remaining human-readable. An improvement might reorganize information to better answer a question, find an implicit assumption in an argument, or connect evidence across multiple sources.

As research resident, your work will focus on designing and testing improvement operators that maintain stability over 1000+ iterations while making genuine progress. You'll start with simple cases (e.g., shallow refactoring of scientific papers) and demonstrate reliable iteration before scaling to more complex reasoning tasks.

Developing systems that perform legible reasoning over long horizons addresses core challenges in AI transparency and scalable reasoning.

About you

Strong candidates will have experience with LLMs, good intuitions about what makes reasoning systematic and verifiable, and care about AI transparency.

The best applicants will additionally have a strong software engineering background and concrete examples of how they've applied this background to come up with novel abstractions that push the frontiers of automated reasoning.

Logistics

• 3-month contract role

• Compensation: $12-15k/month depending on experience

• Location: In-person (Oakland) or remote (US)

• Potential of full-time offer for exceptional candidates

About the Company

Elicit is an AI-powered research assistant designed to help researchers and organizations automate and accelerate evidence-based research. The platform enables users to search over 138 million academic papers and 545,000 clinical trials, leveraging advanced semantic search to surface relevant results without requiring precise keywords. Elicit supports a range of research workflows, including generating customizable research briefs, automating systematic literature reviews, extracting data from both text and figures, and organizing sources for future use. Its tools are trusted by over 5 million researchers across industries such as pharmaceuticals, academia, medical devices, policy, consumer goods, and technology, offering significant time savings and increased accuracy in evidence synthesis.

As a public benefit company, Elicit is driven by a mission to scale up good reasoning and make high-quality research more accessible and efficient. The company emphasizes transparency, accuracy, and scientific rigor, supporting all AI-generated claims with sentence-level citations. Employees at Elicit are part of a team that values truth-seeking, craftsmanship, and open communication, working on impactful problems at the intersection of AI and scientific discovery. The company fosters a collaborative environment where individuals are encouraged to explore, innovate, and contribute to tools that help society make better, evidence-based decisions.
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Elicit

ML Research Resident

Type
contract
Department
Residency
Location
Oakland, CA (or remote within US timezones)
Salary
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