Gaming Industry Job Tracker

Founding Research Scientist, Robot Learning

GRAM · San Francisco, California, United States · Posted 2026-08-21 · Full Time

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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.

About the role

GRAM is building reusable embodied intelligence that transfers across embodiments, tasks, environments, tools, and team configurations. The work must remain grounded in data, compute, runtime constraints, and repeatable physical evaluation.

You will be the accountable owner of GRAM's robot-learning research agenda. You will set technical direction and evaluation standards, make architecture, data, and compute tradeoffs directly with the founders, and shape the hiring standard and mentor the team as the program grows. You will develop general representations, models, policies, training methods, and evaluations for individual and coordinated physical behavior. Success means measured transfer to physical systems, not breadth asserted from a benchmark.

What you will do

Minimum qualifications

Preferred experience

Compensation

The annual base salary range for this San Francisco position is $225,000–$300,000. An offer within this range will reflect the position's approved scope and the candidate's demonstrated role-relevant skills and experience.

Working at GRAM

This role is based on-site in San Francisco with direct access to physical robots. The research loop extends from data and training through deployment, measurement, and failure analysis on physical machines.

Interview Process

After submitting your application, we review your portfolio and any exceptional work you've shipped. If your application demonstrates the caliber we seek, you'll enter our interview process, which is designed for speed and substance. We aim to complete it within one week from start to finish.

Trust in the Process

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.

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