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Machine Learning Platform Engineer, Machine Learning (ML) and Artificial Intelligence (AI) Required, Work From Home

san francisco, CA

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Job description

Machine Learning Platform Engineer, Machine Learning (ML) and Artificial Intelligence (AI) Required, Work From Home

As the Machine Learning Platform Engineer, you will build the infrastructure and systems that power Artificial Intelligence (AI) capabilities. You will design and operate the systems behind the Artificial Intelligence (AI) stack, from model training and evaluation to deployment, inference, observability, and continuous improvement. You will work closely with Artificial Intelligence (AI) engineers, researchers, and product engineers to turn models into reliable, scalable, and cost-efficient production systems. You will build the platforms, tooling, and infrastructure that enable the team to experiment quickly and bring AI capabilities to production with confidence. Machine Learning (ML) and Artificial Intelligence (AI) experience are required. This position is 100% Remote.

MUST BE WILLING TO TAKE A 60 MINUTE CODING ASSESSMENT.

Machine Learning Platform Engineer Responsibilities:

– Build and operate the Machine Learning (ML) infrastructure and platforms powering Artificial Intelligence (AI) products.

– Design systems for model training, evaluation, deployment, inference, and experimentation.

– Build and optimize model serving and inference infrastructure for high-throughput and low-latency workloads.

– Improve reliability, scalability, latency, and cost efficiency of Artificial Intelligence (AI) systems.

– Develop reliable pipelines for data preparation, training, evaluation, model release, and continuous improvement.

– Build platforms and tooling that enable Artificial Intelligence (AI) engineers and researchers to experiment, evaluate, and ship models faster.

– Develop evaluation and benchmarking infrastructure to measure model quality, performance, and regressions.

– Build production observability, monitoring, tracing, and alerting for Artificial Intelligence (AI)/Machine Learning (ML) workloads.

– Improve Artificial Intelligence (AI) systems across reliability, scalability, latency, throughput, and cost.

– Identify bottlenecks across the Machine Learning (ML) stack and continuously improve system performance.

– Work closely with Artificial Intelligence (AI) engineers, researchers, and product teams to turn evolving model requirements into production-ready infrastructure.

Machine Learning Platform Engineer Outcomes

– AI infrastructure reliably supports production workloads at scale.

– Models can be trained, evaluated, deployed, and improved efficiently.

– Inference systems deliver strong latency, throughput, reliability, and cost efficiency.

– Machine Learning (ML) pipelines are reproducible, observable, maintainable, and robust.

– Model and infrastructure regressions are detected quickly and diagnosed efficiently.

– Common Machine Learning (ML) infrastructure capabilities become reusable platform primitives rather than being rebuilt for every AI product.

– The AI stack can evolve rapidly as new models, architectures, and inference techniques emerge.

Tech Stack: Python, PyTorch, JAX, LLM and ML serving infrastructure such as vLLM, SGLang, or TensorRT-LLM, Cloud infrastructure, Distributed systems, Machine Learning (ML)/data pipelines and workflow orchestration, GPU infrastructure and performance tooling, and Vector databases and retrieval infrastructure.

Machine Learning Platform Engineer Qualifications:

– Machine Learning (ML) and Artificial Intelligence (AI) experience are required.

– Strong software engineering fundamentals and experience building production systems.

– Experience building Machine Learning (ML) infrastructure, platforms, or production machine learning systems.

– Experience with model deployment, inference, evaluation, or data pipelines.

– Strong understanding of distributed systems and system reliability.

– Ability to write clean, maintainable, production-quality code.

– Comfortable working in ambiguous, fast-moving environments.

– Bias toward ownership, experimentation, and continuous improvement.

Benefits include medical insurance, Dental, Vision, Savings Plan Options, PTO, etc.

Keywords: San Francisco CA Jobs, AI, Artificial Intelligence, Cloud Infrastructure, Data Pipelines, Distributed Systems, GPU Infrastructure, JAX, LLM, Large Language Model, Machine Learning Platform Engineer, ML, Machine Learning, Python, PyTorch, SGLang, TensorRT-LLM, Vector Databases, vLLM, Workflow Orchestration, Work From Home, Remote, California Recruiters, IT Jobs, California Recruiting

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Worksite address

san francisco, CA, 94199, US

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