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GRAM is building a new class of machines and infrastructure to turn physical operation into reproducible training datasets. You will own the systems after capture, ensuring datasets remain traceable to robot configuration, calibration, software, and experiments.
This senior software engineering role focuses on ingestion, schema evolution, and reliable data pipelines that support multimodal records and downstream training and evaluation.
The Mission
GRAM is a self-replication company creating machine labor for the physical economy.
Our first research frontier is self-preservation: the base case of physical self-replication. We are building a new class of machines called insectoids that can survive, coordinate, and recover without humans. We believe scalable machine labor requires more than single-agent task generality or machines shaped in our image.
You will build the infrastructure that turns physical operation into reproducible training and evaluation datasets. Your scope begins at the capture contract and spans multimodal ingestion, temporal alignment, provenance, quality controls, storage, dataset construction, replay, and reliable access for training and evaluation.
This is a senior software engineering role responsible for the systems after capture and the contracts that keep recorded experience compatible with downstream use. Success means a model behavior can be traced through its dataset, run, software, calibration, commands, interventions, outcomes, and hardware state—and that dataset revisions remain reproducible rather than becoming ungoverned data volume.
The annual base salary range for this San Francisco position is $190,000–$240,000. An offer within this range will reflect the position’s approved scope and the candidate’s demonstrated role-relevant skills and experience.
This role is based on-site in San Francisco and remains grounded in data generated through sustained physical operation.
GRAM expects deep trust and ownership from its people, and we begin by extending the same to candidates. We treat your information, prior work, and conversations with discretion.