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Location
In office (Seoul)
Seniority
Middle · 3+ years exp
Overview
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Impact
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FuriosaAI designs high-performance, power-efficient AI accelerators (NPUs) used in data centers for computer vision, GenAI, LLMs, and demanding workloads.

About FuriosaAI

FuriosaAI builds high-performance, high-efficiency AI compute for the Inference Era. Founded in 2017 by veteran semiconductor and AI algorithm engineers, Furiosa operates globally with offices in Korea and Silicon Valley, along with a compiler-focused R&D lab in Lisbon. 

Our vision is to make AI computing sustainable, enabling access to powerful AI for everyone on Earth. We solve the AI hardware energy and operational cost crisis at the architectural level, rather than through brute force, building the world's first truly AI-native compute platform to unlock the full potential of artificial intelligence  for every enterprise.

About the Role

Owns the developer-facing documentation that makes FuriosaAI's software stack - the Furiosa SDK and Furiosa-LLM - usable, from API references and conceptual guides to tutorials, quickstarts, and release notes. This is a docs-as-code role: reading source, running the stack on real hardware, and producing precise, verifiable documentation that keeps pace with a fast-moving compiler, runtime, and inference codebase - backed by automated pipelines that continuously validate that documentation against the live codebase and hardware.

Key Responsibilities

  • Owns and writes developer documentation for the Furiosa SDK and Furiosa-LLM - API references, conceptual guides, tutorials, quickstarts, and migration guides - translating complex systems behavior into clear, accurate, task-oriented content.

  • Builds, maintains, and operates the documentation toolchain and docs-as-code pipeline (MDX-based static sites, automated API-reference generation, automated link and sample validation in CI), treating documentation as a versioned, testable artifact that is continuously verified against each SDK release.

  • Designs and runs automated, hardware-in-the-loop validation pipelines that continuously authors and verifies runnable code samples and end-to-end examples against real RNGD hardware and released packages, catching drift early and ensuring every snippet compiles, runs, and reflects current APIs.

  • Partners with engineers across diverse teams to capture design intent and surface accurate technical detail, then drives documentation to keep up with release cycles, deprecations, and breaking changes.

  • Defines and enforces documentation standards - style, terminology, information architecture, and versioning - so content stays consistent and discoverable across the SDK and Furiosa-LLM.

  • Produces release notes, changelogs, and upgrade and migration guidance that clearly communicate what changed across SDK and Furiosa-LLM versions.

Minimum Qualifications

  • Bachelor's degree in Computer Science or equivalent work experience, with 3+ years writing technical documentation for developer-facing software (SDKs, APIs, systems software, or ML frameworks).

  • Strong written English with the ability to explain low-level, systems-level concepts precisely and concisely.

  • Working proficiency in Python and command-line tooling; comfortable reading source code, running build and inference workflows, and writing and validating code samples.

  • Fluency with Git-based docs-as-code workflows and Markdown/MDX, including running documentation checks in CI.

  • Solid understanding of deep neural networks (DNNs) and large language models (LLMs) - how they are built, run, and served - sufficient to document inference workflows accurately.

  • Strong communication skills for cross-team requirement gathering and technical alignment.

Preferred Qualifications

  • Experience documenting ML inference frameworks, compilers, runtimes, or accelerator/GPU software stacks.

  • Familiarity with LLM inference concepts (serving, batching, quantization, KV cache, distributed inference) and the PyTorch / Hugging Face ecosystem.

  • Familiarity with GPU Kernel programmings (e.g., CUDA, Triton)

  • Experience building and operating documentation platforms (e.g., MDX-based static site generators, Fumadocs, Mintlify, Sphinx) and automated API-reference pipelines.

  • Experience designing information architecture and versioned documentation for software with frequent releases.

  • Fluency in Python and Rust programming, sufficient to read, write, and validate code samples across the stack.

Why Join FuriosaAI

The defining bottleneck of the AI era is building the right hardware and software stack to run it at global scale. Furiosa is solving this challenge holistically from the ground up.

With our flagship chip, RNGD, in mass production today and our next-generation platform in development with Broadcom, we are proving that full-stack, tensor-native compute is the future of AI infrastructure. This is a pivotal moment to join our team, right as we accelerate our global expansion.

At Furiosa, you will:

Solve AI’s Most Urgent Challenge. Help build the high-performance, energy-efficient inference hardware and software required to fulfill the promise of advanced AI.

Pioneer Full-Stack Co-Design. Work with teams that are architecting solutions from silicon up through the compiler (featuring innovations like Tensor Contraction Language and Virtual ISA) and serving frameworks.

Ship Real-World Silicon, Software, and Solutions. Turn breakthrough technology into commercial deployment. RNGD is in mass production with TSMC and running live enterprise workloads for global leaders like LG AI Research and Samsung SDS.

Partner With the Industry's Best. Collaborate across an elite global ecosystem that includes TSMC, Broadcom, SK Hynix, and GUC.

Do Your Life’s Best Work. Join a brilliant, low-ego, mission-driven team in a high-trust environment that values autonomy, intellectual curiosity, and shared ambition. 

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