Baseten

Software Engineer - Baseten Inference Stack

Full-time · San Francisco (Remote)
✓ Verified live on the employer's own system · added 68 days ago
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Requirements

Education: Bachelor's degree or related field

Skills & tools

Machine LearningDistributed SystemsDevopsManagementOperationsTroubleshooting
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Full job description

Baseten's Inference Stack team builds the distributed runtime that powers large-scale LLM inference across our platform. We operate at the intersection of distributed systems, model performance, infrastructure, and developer experience. We enable customers to deploy and operate cutting-edge LLM models with industry-leading performance, scalability, reliability, and ease of use.

As a Software Engineer on the Inference Stack team, you'll work across the stack - from the developer experience customers use to deploy models, the libraries used for features like tool calling and reasoning, all the way down to the systems we use to orchestrate deployments in Kubernetes and route traffic efficiently.

This is an ideal role for engineers who enjoy owning systems in production, solving hard integration problems, and making complex infrastructure simple and reliable for users.

https://www.baseten.co/blog/nvidia-dynamo-day-baseten-inference-stack/

https://www.baseten.co/blog/how-baseten-achieved-2x-faster-inference-with-nvidia-dynamo/

https://www.baseten.co/blog/how-baseten-multi-cloud-capacity-management-mcm-powers-cloud-self-hosted-and-hybr/#comparing-deployment-options-cloud-vs-self-hosted-vs-hybrid

- Develop infrastructure and orchestration systems for deploying and managing large-scale distributed LLM inference

- Work across the stack, from customer-facing features to low-level infrastructure components

- Build platform capabilities related to routing, autoscaling, scheduling, observability, and runtime management

- Improve the reliability, scalability, and usability of our inference stack

- Collaborate closely with Model Performance engineers to make new inference optimizations broadly available to customers and easy to configure

- Help define best practices around testing, release automation, benchmarking, and operational excellence

- Debug complex production systems spanning Kubernetes, distributed runtimes, networking, and GPU workloads

- Make thoughtful engineering tradeoffs balancing performance, reliability, operational simplicity, and developer experience

- Own projects end-to-end: from architecture and implementation through deployment, monitoring, and iteration based on customer feedback

- Bachelor's, Master's, or Ph.D. in Computer Science, Engineering, or a related field

- Strong background in distributed systems, backend infrastructure, or platform engineering

- Experience building and operating production systems where reliability, latency, and scale are first-class concerns

- Strong sense of developer experience: you think about how systems are used, not just how they work

- Motivated and willing to learn new languages, frameworks, and systems as needed

- Ability to debug complex systems across multiple layers of the stack

- Genuine interest in inference engineering. You don't need to have hands on experience but are willing to learn

- Experience with Kubernetes, including concepts like operators and custom resources

- Prior work on Dynamo, vLLM, SGLang, TensorRT-LLM, or similar inference frameworks

- Experience with distributed scheduling, autoscaling, or service orchestration

- Familiarity with observability tooling, CI/CD systems, or release automation

- Experience contributing to open-source infrastructure or ML systems

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This posting was published by Baseten on their own careers system and is shown here with a direct link to apply there. Employers: for corrections or removal, contact jobs@veritahire.com.