Research Engineer, Content Understanding

Exa

San Francisco (CA)

On-site

USD 150,000 - 210,000

Full time

6 days ago
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Job summary

Exa is an applied AI lab building a groundbreaking search engine and massive-scale infrastructure. We are seeking a backend engineer with strong ML background to advance parsing, page quality assessment, and credible content modeling at scale.

You will work on transformer-based models, supervision signals, and data-driven evaluation to push the boundaries of web understanding across languages and domains.

Qualifications

  • Graduate-level ML experience with strong research or applied results.
  • Experience building transformer models and evaluating them at scale.
  • Comfort with datasets and supervision-focused improvements.
  • Ability to define problems where ground truth is not yet established.
  • Interest in enabling knowledge discovery and credible results.

Responsibilities

  • Develop and improve parsing to handle pages where it currently fails.
  • Train and supervise models to judge page quality and authority.
  • Tackle credibility and misinformation as a modeling problem.
  • Compare document semantics to prevent deduplication of useful pages.
  • Create scalable classification and extraction that runs at web scale.
  • Design supervision signals for tasks lacking labeled data.

Skills

ML experience
Transformer models
Large-scale data
Ground-truth formulation
Knowledge extraction

Education

Master's degree or PhD in ML/CS

Tools

PyTorch

Job description

Exa is an applied AI lab building a search engine unlike the world has ever seen. We build massive-scale infra to crawl the entire web, train state-of-the-art embedding models to process it, and design super high performant vector databases to retrieve over it. We now power search for Cursor, Cognition, HubSpot, and over 400,000 developers and have raised $350m from Lightspeed, Benchmark, and a16z.

Our ultimate goal is to build perfect search over all the world's information, far beyond Google. If you want to build massive-scale ML systems that will define the way the new AI world consumes information, this is the place for you.

As a backend engineer, you'd play a critical role in our search architecture. We're pretty flexible on what projects people work on based on their skills and interests.

Search quality is bounded by what we understand about a page. Before anything can be retrieved, something has to work out what the page actually says. That means parsing it into the parts that are content and the parts that are furniture, classifying what kind of page it is and what it is about, telling whether the page is usable at all, extracting when it was published, judging how good it is and whether it can be trusted, and working out whether it says anything that a page we already have does not. All of this has to work on every page on the web, in every language, in every shape the web comes in.

Some of this is classic document understanding. Some of it is much more open. Credibility and misinformation, AI-generated and machine-spun content, and pages written to be found rather than read are all unsolved, and search results are only as trustworthy as our answers to them.

We are looking for a research engineer to work on this. There is a lot of room to do it well.

Desired Experience
  • Graduate-level ML experience (Master’s or PhD with at least 2 years of relevant experience), or an exceptionally strong undergrad

  • You can build a transformer from scratch in PyTorch, and you have trained models that then had to be cheap enough to run everywhere

  • You like building large-scale datasets and living in the data. Most of the wins here are in the supervision rather than the architecture

  • You are comfortable with problems where the ground truth does not exist yet and defining it is part of the job

  • You care about the problem of finding high quality knowledge and recognize how important this is for the world

Example Projects
  • Make parsing work on the pages where it currently does not, and prove the improvement rather than assert it

  • Teach a model to judge page quality, and get everyone to agree on what quality means well enough to supervise it

  • Work on credibility and misinformation as a modelling problem: what a page claims, whether it is a reliable source of it, and whether it was written for a reader or for a crawler

  • Decide whether two documents are semantically the same or genuinely different, so we can deduplicate the web without collapsing pages that a user would want to see separately

  • Build classification and extraction that is accurate at web scale and cheap enough to run on all of it

  • Design the supervision for something nobody has labels for, and find out whether it is learnable at all

  • Trace a bad search result back to the page-level prediction that caused it, and fix it at the source

Exa is an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, creed, color, religion, sex, sexual orientation, gender identity or expression, national origin, disability, age, veteran status, marital status, pregnancy or related conditions, criminal histories consistent with applicable law, or any other basis protected by applicable law.

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