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As an ML Platform Engineer at Avride, you'll own critical pieces of the ML stack: workflow orchestration, distributed execution, resource governance, performance.You will shape how ML teams across the company run experiments and train models at scale. You will build the abstractions and services that make training workloads reliable, cost-efficient, and fast, helping ML teams run at scale on Kubernetes with strong reliability and excellent developer experience.
The ML Platform team at Avride builds the infrastructure that powers large-scale ML training and data processing for autonomous driving. We sit between Cloud Platform and ML engineers, turning low-level compute, storage, and networking primitives into an ML platform that teams actually use — scalable orchestration, distributed compute, and production-grade tooling for the full model lifecycle.
As an ML Platform Engineer at Avride, you'll own critical pieces of the ML stack: workflow orchestration, distributed execution, resource governance, performance.You will shape how ML teams across the company run experiments and train models at scale. You will build the abstractions and services that make training workloads reliable, cost-efficient, and fast, helping ML teams run at scale on Kubernetes with strong reliability and excellent developer experience.
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Winston-Salem, USA
Lakeland, USA
Fort Myers, USA
San Luis Obispo, USA
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Tempe, USA
Wilmington, USA
Strong proficiency in Python or Go; C++ is a plus
Track record of designing and building scalable, maintainable systems and services
Experience operating production services end-to-end: APIs, reliability practices, observability
Deep knowledge of Kubernetes: how scheduling, resource management, controllers, and pod lifecycle actually behave under pressure
Solid Linux and systems debugging skills: performance investigation, networking, storage/IO
Ability to troubleshoot complex production issues across logs, metrics, and traces and drive them to resolution
Experience with Argo Workflows, Ray, MLflow, or comparable distributed ML tooling
Hands-on experience building or operating large-scale ML training systems: GPU scheduling, distributed training, training data pipelines
Track record of optimizing resource usage and performance in distributed environments
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Candidates are required to be authorized to work in the U.S. The employer is not offering relocation, sponsorship, and remote work options are not available.
Avride is an equal opportunity employer and committed to providing reasonable accommodations to qualified applicants and employees with disabilities to ensure they have equal access to employment opportunities. Avride complies with the Americans with Disabilities Act (ADA), if you need a reasonable accommodation to assist with the application or hiring process, or to perform the essential functions of a job, please email jobs@avride.ai.
Avride develops autonomous driving and robotic delivery technology, building self-driving vehicles and sidewalk delivery robots for urban transportation and last-mile logistics.
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