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Machine Learning Infrastructure Engineer

Clera

On-site
San Mateo, CA
Full-time
Senior
5+ yrs
Salary not listedPosted 45m ago

Real job — pulled straight from Clera’s careers page · Verified September 8, 2026 · No reposts.

Job description

Clera is hiring a Machine Learning Infrastructure Engineer — a full-time, based in San Mateo, CA role. Apply directly on Clera's careers page below.

ML Infrastructure Engineer

Department: Engineering

Location: San Mateo

Employment Type: FullTime

About the Role

This is a hands-on infrastructure engineering role at an early-stage enterprise AI company building a context layer that makes AI agents reliable, accurate, and secure for mission-critical business operations. You'll own the systems that keep those agents running fast and reliably in production — from design through deployment — working closely with ML and infrastructure teams to scale inference at increasing concurrency.

What You'll Do

  • Own inference and model-serving infrastructure end to end, from architecture design through production deployment.

  • Build and scale systems that enable AI agents to run reliably and efficiently under high concurrency in production environments.

  • Collaborate with ML and infrastructure teams to ensure seamless integration and drive performance optimization.

  • Identify infrastructure bottlenecks and lead the engineering effort to resolve them.

What We're Looking For

  • 5+ years of experience building and operating machine learning inference systems, model-serving platforms, or ML infrastructure in production environments.

  • Hands-on experience designing and scaling inference-serving infrastructure using tools such as TensorFlow Serving, TorchServe, Triton, KServe, or equivalent custom systems.

  • Demonstrated ability to optimize production ML systems for latency, throughput, and reliability at scale.

  • Strong proficiency with containerization and orchestration technologies — Docker and Kubernetes — for deploying ML workloads.

  • Experience building or maintaining distributed systems that handle concurrent requests and manage resource allocation under load.

  • Solid command of monitoring, observability, and debugging tooling for production systems (e.g., Prometheus, Grafana, ELK, distributed tracing).

  • Experience deploying and managing ML systems on cloud platforms such as AWS, GCP, or Azure.

  • Proficiency in at least one systems or backend language: Python, Go, Rust, C++, or Java.

  • Experience with knowledge graphs, semantic search, or graph databases (e.g., Neo4j, Amazon Neptune) is a plus.

  • Familiarity with real-time or low-latency inference systems, agentic AI pipelines, or enterprise data infrastructure is a plus.

Location

On-site in San Mateo, California, United States. Visa sponsorship is not available for this role.

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Frequently asked questions

What skills are required for Machine Learning Infrastructure Engineer at Clera?

The required skills for Machine Learning Infrastructure Engineer at Clera include: Machine Learning, Docker, Kubernetes, Prometheus, Grafana, Elasticsearch, AWS, GCP, Azure, Python, Go, Rust, C++, Java.

What is the seniority level for Machine Learning Infrastructure Engineer at Clera?

Machine Learning Infrastructure Engineer at Clera is a Senior level position.

How do I apply for Machine Learning Infrastructure Engineer at Clera?

You can view the full description and apply for Machine Learning Infrastructure Engineer at Clera on EchoJobs: https://echojobs.io/job/clera-ml-infrastructure-engineer-vk65d.