Cloud - ML Platform Engineer

Reposted Yesterday
Easy Apply
2 Locations
In-Office
Senior level
Robotics
The Role
The ML Platform Engineer will build and maintain the infrastructure for the ML development lifecycle, improve system efficiency, and support ML practitioners' workflows.
Summary Generated by Built In
The Role

We are looking for Senior or Staff level ML Platform Engineers to join our team in either New York or San Francisco. 

Bedrock Robotics is transforming the physical world with autonomy. While others debate the future of AI, we're deploying it. With a team that helped put self-driving cars on public roads at Waymo, scaled systems for Segment's $3.2B acquisition, and grew Uber Freight to $5B in revenue, and with the backing of world-class advisors and investors from 8VC, Eclipse, Valor, Two Sigma, and many others, we are uniquely positioned to succeed in our optimistic vision of autonomy and industrial transformation.

At Bedrock Robotics, ML Platform Engineering bridges infrastructure and machine learning. We build modern systems for high scale training of end-to-end autonomy, focus on system performance for GPUs, and build solutions for data mining, metrics, labeling, experiment tracking, and evaluation. We are the engine that powers Bedrock Robotics’ fast-moving and novel physical world autonomy.

As a passionate ML Platform engineer, you will have an immediate impact on our autonomy progress. We are looking for experienced Senior Software Engineers / TLs experienced with ML platforms and who can work closely with ML engineers and other infrastructure teams.

Also, you get to drive 100,000 lb excavators.

Some of the challenges our team takes on include:

  • Build out robot data labeling and evaluation pipelines.
  • Design and create a data mining solution.
  • Iterate and evolve experiment tracking.
  • Improve performance of our scaled training loop.
  • Work with other ML teams to understand their workflows and their needs.
  • Develop, maintain, and enhance frameworks for AI/ML model development and deployment while establishing and driving best practices in MLOps 
  • Design, advocate, and implement for usability, reliability, scalability, operational excellence, and cost management while delivering incrementally.
  • Collaborate closely with ML Engineers, Data Scientists, Data Engineers and Product Managers to understand their needs and identify opportunities to accelerate the AI/ML development and deployment process.

Required Qualifications: 

  • 5+ years of professional software engineering experience building ML platforms, infrastructure, or internal tooling that accelerates model development and deployment for ML engineers.
  • 4+ years of experience (may include graduate research) as an ML, Data, Platform, or Distributed Systems Engineer working on large-scale, complex, or highly distributed systems.
  • 2+ years of hands-on experience designing, building, and operating production-grade ML systems, such as training pipelines, feature stores, model serving, evaluation frameworks, or workflow orchestration.
  • Proven experience leading projects end-to-end, from concept and initial design through implementation and deployment, working with at least one other engineer.
  • 2+ years of close collaboration with cross-functional ML stakeholders to understand requirements and ship platform capabilities that improve iteration speed and reliability.

Preferred Skills/Qualifications: 

  • Experience in performance optimization for GPUs
  • Experience working with multi-modal data is a plus
  • Startup experience is a plus 
  • Experience with robotics, simulation, or perception ML pipelines
  • Familiarity with modern ML infra stacks (Ray, Kubeflow, MLflow, Metaflow, Airflow, Feast, Vertex, SageMaker, etc.)
  • Hands on experience in distributed training, model optimization, or experiment tracking systems
  • Experience building internal developer platforms or self-service tooling

Our roles are often flexible. If you don't fit all the criteria, or are in another location (especially one where we have an office like SF of NY) please apply anyway! We'd love to consider you. 

Join the team bringing advanced autonomy to the built world

At Bedrock, we've assembled one of the most experienced autonomous technology teams in the industry, with deep expertise scaling breakthroughs across transportation, infrastructure, and enterprise software. Our leaders helped put the first self-driving cars on public roads at Waymo, scaled systems for Segment's $3.2B acquisition, and grew Uber Freight to $5B in revenue.

While others debate the future of AI, we're deploying it in the real world. Our systems are already installed on heavy machines across the country, learning on real construction sites and working to reshape the earth with survey-grade precision and exceptional safety. This isn't a simulation—it's autonomous intelligence working on billion-dollar infrastructure projects.

In just over a year, we've raised $80M, put our equipment into the field, and established partnerships with forward-thinking contractors who are integrating our technology into their operations. We're working quickly to close the gap between America's surging demand for housing, data centers, manufacturing hubs, and the construction industry's growing labor shortage.

Here, algorithms meet steel-toed boots. You'll collaborate with both construction veterans and experienced engineers, tackling problems where your work directly impacts how the physical world get built. If you're interested in applying cutting-edge technology to solve meaningful problems alongside a talented team—we'd love to have you join us.


Top Skills

Data Management
Infrastructure Engineering
Machine Learning
Multi-Modal Data
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The Company
HQ: San Francisco, CA
56 Employees
Year Founded: 2024

What We Do

Bedrock Robotics brings advanced autonomy to the built world, helping the construction industry build at the pace today's society demands. Our technology upgrades existing heavy equipment, enabling truly autonomous operation with expert level quality and superhuman safety. At a time when we need to build faster than ever—from housing to data centers to factories and energy infrastructure—autonomous construction isn't just an innovation, it's an economic necessity.

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