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Software Engineer - AI Inference Infrastructure

Job in Seattle, King County, Washington, 98127, USA
Listing for: ByteDance
Full Time position
Listed on 2026-02-16
Job specializations:
  • IT/Tech
    AI Engineer, Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 129960 - 246240 USD Yearly USD 129960.00 246240.00 YEAR
Job Description & How to Apply Below

Software Engineer - AI Inference Infrastructure

Location:

Seattle

Team:
Infrastructure

Employment Type:

Regular

Responsibilities

About the Team The Inference Infrastructure team is the creator and open-source maintainer of AIBrix, a Kubernetes-native control plane for large-scale LLM inference. We are part of Byte Dance’s Core Compute Infrastructure organization, responsible for designing and operating the platforms that power microservices, big data, distributed storage, machine learning training and inference, and edge computing across multi-cloud and global datacenters.

With Byte Dance’s rapidly growing businesses and a global fleet of machines running hundreds of millions of containers daily, we are building the next generation of cloud-native, GPU-optimized orchestration systems. Our mission is to deliver infrastructure that is highly performant, massively scalable, cost-efficient, and easy to use—enabling both internal and external developers to bring AI workloads from research to production  are expanding our focus on LLM inference infrastructure to support new AI workloads, and are looking for engineers passionate about cloud-native systems, scheduling, and GPU acceleration.

You’ll work in a hyper-scale environment, collaborate with world-class engineers, contribute to the open-source community, and help shape the future of AI inference infrastructure globally.

  • Design and build large-scale, container-based cluster management and orchestration systems with extreme performance, scalability, and resilience.
  • Architect next-generation cloud-native GPU and AI accelerator infrastructure to deliver cost-efficient and secure ML platforms.
  • Collaborate across teams to deliver world-class inference solutions using vLLM, SGLang, Tensor

    RT-LLM, and other LLM engines.
  • Stay current with the latest advances in open source (Kubernetes, Ray, etc.), AI/ML and LLM infrastructure, and systems research; integrate best practices into production systems.
  • Write high-quality, production-ready code that is maintainable, testable, and scalable.
Qualifications

Minimum Qualifications
  • B.S./M.S. in Computer Science, Computer Engineering, or related fields with 2+ years of relevant experience (Ph.D. with strong systems/ML publications also considered).
  • Strong understanding of large model inference, distributed and parallel systems, and/or high-performance networking systems.
  • Hands-on experience building cloud or ML infrastructure in areas such as resource management, scheduling, request routing, monitoring, or orchestration.
  • Solid knowledge of container and orchestration technologies (Docker, Kubernetes).
  • Proficiency in at least one major programming language (Go, Rust, Python, or C++).
Preferred Qualifications
  • Experience contributing to or operating large-scale cluster management systems (e.g., Kubernetes, Ray).
  • Experience with workload scheduling, GPU orchestration, scaling, and isolation in production environments.
  • Hands-on experience with GPU programming (CUDA) or inference engines (vLLM, SGLang, Tensor

    RT-LLM).
  • Familiarity with public cloud providers (AWS, Azure, GCP) and their ML platforms (Sage Maker, Azure ML, Vertex AI).
  • Strong knowledge of ML systems (Ray, Deep Speed, PyTorch) and distributed training/inference platforms.
  • Excellent communication skills and ability to collaborate across global, cross-functional teams.
  • Passion for system efficiency, performance optimization, and open-source innovation.
Job Information

The base salary range for this position in the selected city is $129,960 - $246,240 annually.

Compensation may vary outside of this range depending on a number of factors, including a candidate’s qualifications, skills, competencies and experience, and location. Base pay is one part of the Total Package that is provided to compensate and recognize employees for their work, and this role may be eligible for additional discretionary bonuses/incentives, and restricted stock units.

Benefits

Benefits may vary depending on the nature of employment and the country work location. Employees have day one access to medical, dental, and vision insurance, a 401(k) savings plan with company match, paid parental leave, short-term and…

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