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Senior Machine Learning Engineer, Distributed vLLM

Job in Boston, Suffolk County, Massachusetts, 02298, USA
Listing for: Red Hat, Inc.
Full Time position
Listed on 2026-02-16
Job specializations:
  • Software Development
    Cloud Engineer - Software, AI Engineer, Software Engineer, DevOps
Salary/Wage Range or Industry Benchmark: 80000 - 100000 USD Yearly USD 80000.00 100000.00 YEAR
Job Description & How to Apply Below
** Job Summary
** At Red Hat we believe the future of AI is open and we are on a mission to bring the power of open-source LLMs and vLLM to every enterprise. The Red Hat AI Inference Engineering team accelerates AI for the enterprise and brings operational simplicity to GenAI deployments. As leading developers, maintainers of the vLLM and LLM-D projects, and inventors of state-of-the-art techniques for model quantization and sparsification, our team provides a stable platform for enterprises to build, optimize, and scale LLM deployments.

As a Senior Machine Learning Engineer focused on distributed vLLM infrastructure in the llm-d project, you will be at the forefront of innovation, collaborating with our team to tackle the most pressing challenges in scalable inference systems and Kubernetes-native deployments. Your work with machine learning, distributed systems, high performance computing, and cloud infrastructure will directly impact the development of our cutting-edge software platform, helping to shape the future of AI deployment and utilization.

If you want to solve cutting edge problems at the intersection of deep learning, distributed systems, and cloud-native infrastructure the open-source way, this is the role for you.

Join us in shaping the future of AI!
** What you will do
*** Contribute to the design, development, and testing of new features and solutions for Red Hat AI Inference
* Innovate in the inference domain by participating in upstream communities
* Design, develop, and maintain distributed inference infrastructure leveraging Kubernetes APIs, operators, and the Gateway Inference Extension API for scalable LLM deployments.
* Develop and maintain system components in Go and/or Rust to integrate with the vLLM project and manage distributed inference workloads.
* Develop and maintain KV cache-aware routing and scoring algorithms to optimize memory utilization and request distribution in large-scale inference deployments.
* Enhance the resource utilization, fault tolerance, and stability of the inference stack.
* Develop and test various inference optimization algorithms.
* Actively participate in technical design discussions and propose innovative solutions to complex challenges for high impact projects
* Contribute to a culture of continuous improvement by sharing recommendations and technical knowledge with team members
* Collaborate with product management, other engineering and cross-functional teams to analyze and clarify business requirements
* Communicate effectively to stakeholders and team members to ensure proper visibility of development efforts
* Mentor and coach a distributed team of engineers
* Provide timely and constructive code reviews
* Represent RHAI in external engagements including industry events, customer meetings, and open source communities
** What you will bring
*** Strong proficiency in Python and GoLang or similar
* Experience with cloud-native Kubernetes service mesh technologies/stacks such as Istio, Cilium, Envoy (WASM filters), and CNI.
* A solid understanding of Layer 7 networking, HTTP/2, gRPC, and the fundamentals of API gateways and reverse proxies.
* Knowledge of serving runtime technologies for hosting LLMs, such as vLLM, SGLang, Tensor

RT-LLM, etc.
* Excellent written and verbal communication skills, capable of interacting effectively with both technical and non-technical team members.
* Experience providing technical leadership in a global team
* Autonomous work ethic and the ability to thrive in a dynamic, fast-paced environment
** Following is considered a plus
*** Strong proficiency in Rust, C, or C++
* Working knowledge of high-performance networking protocols and technologies including UCX, RoCE, Infini Band, and RDMA is a plus.
* Deep experience with the Kubernetes ecosystem, including core concepts, custom APIs, operators, and the Gateway API inference extension for GenAI workloads.
* Experience with GPU performance benchmarking and profiling tools like NVIDIA Nsight or distributed tracing libraries/techniques like Open Telemetry.
* Experience in writing high performance code for GPUs and deep knowledge of GPU hardware
* Strong understanding of computer…
Position Requirements
10+ Years work experience
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