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Inferact

Member of Technical Staff, Inference

Posted an hour ago
2-5 years experience
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AI Summary

You will work at the core of vLLM to optimize how models execute across diverse hardware and architectures. Your contributions will directly impact the performance and scalability of AI inference engines globally.

Inferact's mission is to grow vLLM as the world's AI inference engine and accelerate AI progress by making inference cheaper and faster. Founded by the creators and core maintainers of vLLM, we sit at the intersection of models and hardware—a position that took years to build.

About the Role

We're looking for an inference runtime engineer to push the boundaries of what's possible in LLM and diffusion model serving. Models grow larger. Architectures shift: mixture-of-experts, multimodal, agentic. Every breakthrough demands innovations on the inference engine itself. You'll work at the core of vLLM, optimizing how models execute across diverse hardware and architectures. Your work will directly impact how the world runs AI inference.

Skills and Qualifications

Minimum qualifications:

  • Bachelor's degree or equivalent experience in computer science, engineering, or similar.

  • Deep understanding of transformer architectures and their variants.

  • Strong programming skills in Python with experience in PyTorch internals.

  • Experience with LLM inference systems (vLLM, TensorRT-LLM, SGLang, TGI).

  • Ability to read and implement model architectures and inference techniques from research papers.

  • Demonstrate the ability to contribute performant and maintainable code and debug in complex ML codebases.

Preferred qualifications:

  • Deep understanding of KV-cache memory management, prefix caching, and hybrid model serving.

  • Familiarity with RL frameworks and algorithms for LLMs.

  • Experience with multimodal inference (audio/image/video/text).

  • Contributions to open-source ML or system infrastructure projects.

Bonus points if you have:

  • Implemented core features in vLLM or other inference engine projects.

  • Contributed to vLLM integrations (verl, OpenRLHF, Unsloth, LlamaFactory, etc).

  • Written widely-shared technical blogs or side projects on vLLM or LLM inference.

Logistics

  • Location: Fully remote, worldwide. We're timezone-flexible but expect regular overlap with Pacific Time for critical syncs.

  • Compensation: We offer competitive compensations (salary + equity) compared to the local market conditions.

  • Visa sponsorship: We sponsor visas on a case-by-case basis.

  • Benefits: Inferact offers competitive benefits appropriate to your location, including health coverage where applicable.

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