- Location
- Palo Alto, California, United States
- Employment
- Full time
- Level
- Mid level
- Posted
- 7 months ago
About this role
The Role
At Mind Robotics, we’re building generalized physical AI - robotic systems capable of dexterous, adaptive, and reasoning-intensive work in real-world industrial environments. Our ability to iterate quickly on large-scale models depends on world-class ML infrastructure.
We’re looking for a Research Engineer to build the core systems that enable fast, reliable, and scalable model training - powering everything from experimentation to production deployment.
Responsibilities
Design and implement scalable systems for training large ML models
Enable efficient workflows for data ingestion, training, and iteration
Develop and optimize distributed training systems across hundreds of GPUs
Implement strategies for parallelization, sharding, and efficient compute utilization
Improve training efficiency through techniques such as attention optimizations, kernel fusion, and memory management
Partner closely with modeling teams to accelerate iteration speed and reduce training costs
Build internal tools for experiment tracking, monitoring, and debugging
Implement systems for tracking training performance, failures, and resource utilization
Debug and resolve bottlenecks across the training stack
Provide lightweight infrastructure support for deploying and running models in production environments
Optimize inference performance and reliability where needed
Support core cloud infrastructure needs for training workloads (without heavy DevOps overhead)
Manage compute resources efficiently across training jobs
Qualifications
Strong experience building infrastructure for large-scale ML training
Deep understanding of how modern LLM/VLM systems are trained and scaled
Proven experience setting up and scaling distributed training across hundreds of GPUs
Strong understanding of parallelization strategies (data, model, pipeline parallelism)
Strong proficiency in Python programming
Expert-level proficiency in PyTorch and/or JAX
Strong understanding of techniques like attention optimization, kernel fusion, and efficient memory usage
Nice to Have
Experience supporting inference systems in production
Familiarity with robotics or embodied AI workloads
Experience building tools for experiment management and researcher productivity
As published by Mind Robotics. Applications are handled on their site.
Skills this posting mentions
About Mind Robotics
Mind Robotics is building the generalized physical intelligence required to solve the world’s most demanding industrial challenges. We believe the path to general-purpose robotics begins where the need is most acute and the environment is most structured: the factory floor.
All 23 openings at Mind RoboticsOne click, then it is written
Apply to Mind Robotics with a resume written for this role.
Queue Research Engineer and I read the posting, rewrite your resume against it, draft the cover letter, and score the fit. Then you press send, or press one button and I fill in Mind Robotics’s form for you.
01Drop your resume
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03Each one is written up
Resume rewritten for the posting, a cover letter, a fit score. Press send, or let me fill in the form.
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Drop a resume or a LinkedIn URL. I rank the live openings against it, rewrite the resume and write a cover letter for the best of them, and fill in the employer's form when you press the button. You read, you decide what goes out.
01Drop your resume
A PDF or a LinkedIn URL. About a minute, once.
02I rank the openings
Every weekday morning, the live catalog scored against your history. Up to 20 worth your time, not two hundred links.
03Each one is written up
Resume rewritten for the posting, a cover letter, a fit score. Press send, or let me fill in the form.
- New matches ranked and written before you are up.
- Every bullet stays inside what your history supports. Nothing invented.
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