cursor
cursor1d ago
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Software Engineer, Pretraining

United StatesUnited States·San Franciscofull-timemid
Software EngineerSoftware Engineering
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Quick Summary

Key Responsibilities

Build and own high-throughput, fully telemetered data pipelines that process frontier-scale data with end-to-end traceability. If something breaks or drifts,

Technical Tools
Software EngineerSoftware Engineering

Our mission is to automate coding. The first step in our journey is to build the best tool for professional programmers, using a combination of inventive research, design, and engineering. Our organization is very flat, and our team is small and talent dense. We particularly like people who are truth-seeking, passionate, and creative. We enjoy spirited debate, crazy ideas, and shipping code.

About the Role

~1 min read

We’re looking for Software Engineers to build the data systems behind our frontier coding models’ initial training. You’ll work on large-scale crawling, data platform, and pipeline infrastructure, turning raw dumps into the datasets our models train on, and making iteration with researchers fast and reliable.

Responsibilities

~1 min read
  • Build and own high-throughput, fully telemetered data pipelines that process frontier-scale data with end-to-end traceability. If something breaks or drifts, your systems will tell us before the training run does.

  • Train and ship models that classify, rank, filter, clean, and identify data at extreme throughput. These models have to be both accurate and fast enough to sit in the critical path without becoming the bottleneck.

  • Design and run scaling-ladder experiments on data-mixture, repeatability, and quality depth that turn “this dataset feels good” into hard evidence the training team can trust.

  • Partner tightly with Data Acquisition to hunt down missing or low-quality sources, and with the training teams to close the loop on what actually moves loss and downstream evals.

  • Treat data quality as a systems problem and a research problem. You will write performance-critical code one week and design careful experiments the next.

    • Build the platform that turns raw web, code, multimodal, and acquired data into training-ready datasets for frontier pretraining runs.

    • Own the pipelines, orchestration, and tooling that make pretraining data iteration fast, reliable, observable, and reproducible at scale.

    • Create clear signals for data quality, lineage, freshness, and pipeline health so researchers can trust what goes into each run.

    • Partner with initial training, crawling, data quality, and acquisition teams to turn new data ideas into measurable improvements in loss, evals, and model capability.

    • Build and scale the web crawling systems that discover, schedule, fetch, and parse high-quality documents across the open web for initial training.

    • Improve URL seeding, scoring, and fair host scheduling so crawl capacity lands on the hosts and pages that matter most for model quality.

    • Raise crawl success and parsing quality — defeating antibot failures, improving extractors, and capturing content we previously could not get cleanly.

    • Debug and harden complex crawl infrastructure end-to-end for availability, recovery, and ingestion lag, and automate delivery of crawl datasets into the data pipeline.

    • Work independently (and alongside AI agents) and partner with Data Quality and Data Platform so new coverage shows up as better tokens in training runs.

    • You have a strong infrastructure or data platform background, and ideally a spike of outlier depth somewhere (crawling/search infra is a plus, not a hard requirement)

    • You are a high-slope engineer who has moved unusually fast — for example, staff-level ownership within a few years — or you bring deep domain experience

    • You are able to architect and ship end-to-end with high ownership, debug complex systems independently, and work alongside AI agents

    • You have strong intuitions about large-scale distributed systems

    • You’re excited to learn how pre-training data shapes model quality, and want the ownership and visibility that comes with building systems that feed frontier training runs

    #LI-DNI

    Location & Eligibility

    Where is the job
    San Francisco, United States
    On-site at the office
    Who can apply
    US

    Listing Details

    Posted
    August 24, 2026
    First seen
    August 24, 2026
    Last seen
    August 24, 2026

    Posting Health

    Days active
    0
    Repost count
    0
    Trust Level
    52%
    Scored at
    August 24, 2026

    Signal breakdown

    freshnesssource trustcontent trustemployer trust
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    cursorSoftware Engineer, Pretraining