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AI Researcher — Inference Optimization

Featherless AI

Remote Gaji dirahasiakan Diposting Minggu, 26 Juli 2026
Lokasi Remote
Gaji Gaji dirahasiakan
Tipe Kerja Full Time · Remote
Negara Amerika Serikat

Deskripsi Pekerjaan

Informasi lengkap tentang posisi dan persyaratan

Ringkasan Yukerja

Lowongan AI Researcher — Inference Optimization di Featherless AI kami kurasi dari Remote Jobs (kategori Pendidikan). Posisi ini ditandai sebagai remote — pastikan timezone dan syarat lokasi kandidat di deskripsi resmi. Yukerja.com bukan pemberi kerja — lamaran diproses di situs sumber resmi.

Role Overview We are seeking an AI Researcher with deep experience in inference optimization to design, evaluate, and deploy high-performance inference systems for large-scale machine learning models. You will work at the intersection of model architecture, systems engineering, and hardware-aware optimization, improving latency, throughput, and cost efficiency across real-world production environments. Key Responsibilities - Research and develop techniques to optimize inference performance for large neural networks. - Improve latency, throughput, memory efficiency, and cost per inference. - Design and evaluate model-level optimizations (quantization, pruning, KV-cache optimization, architecture-aware simplifications). - Implement systems-level optimizations (dynamic batching, kernel fusion, multi-GPU inference, prefill vs decode optimization). - Benchmark inference workloads across hardware accelerators. - Collaborate with engineering teams to deploy optimized inference pipelines. - Translate research insights into production-ready improvements. Required Qualifications - Strong background in machine learning, deep learning, or AI systems. - Hands-on experience optimizing inference for large-scale models. - Proficiency in Python and modern ML frameworks (e.g., PyTorch). - Experience with inference tooling (e.g., Triton, TensorRT, vLLM, ONNX Runtime). - Ability to design experiments and communicate results clearly. Preferred / Nice-to-Have Qualifications - Experience deploying production inference systems at scale. - Familiarity with distributed and multi-GPU inference. - Experience contributing to open-source ML or inference frameworks. - Authorship or co-authorship of peer-reviewed research papers in machine learning, systems, or related fields. - Experience working close to hardware (CUDA, ROCm, profiling tools). What Success Looks Like - Measurable gains in latency, throughput, and cost efficiency. - Optimized inference systems running reliably in production. - Research ideas successfully translated into deployable systems. - Clear benchmarks and documentation that inform product decisions. Relevant Research Areas (Bonus) - Long-context inference optimization - Speculative decoding - KV-cache compression and paging - Efficient decoding strategies - Hardware-aware inference design

Apply directly on RemoteJobs.org: https://remotejobs.org/remote-jobs/ai-researcher-inference-optimization-featherless-ai

Disclaimer: Yukerja.com adalah agregator lowongan kerja, bukan pemberi kerja. Lowongan ini diagregasi dari Remote Jobs. Proses lamaran dilakukan di situs resmi perusahaan atau portal sumber. Kami tidak bertanggung jawab atas keakuratan informasi lowongan.

Tips Melamar AI Researcher — Inference Optimization

  1. Baca deskripsi lengkap dan pastikan skill Anda match sebelum melamar ke Featherless AI.
  2. Sesuaikan CV dan cover letter dengan kata kunci dari job description — terutama untuk kategori Pendidikan.
  3. Klik Lamar Sekarang untuk diarahkan ke Remote Jobs. Proses rekrutmen sepenuhnya di situs sumber.
  4. Siapkan portfolio atau LinkedIn yang update jika diminta di tahap screening.
  5. Waspadai permintaan transfer uang — lowongan resmi tidak memungut biaya.

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