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Machine Learning Engineer, Inference Optimization

Featherless AI

Remote
Full-time
Mid Level
Senior
Salary not listedPosted 4w ago

Real job — pulled straight from Featherless AI’s careers page · Verified July 17, 2026 · No reposts.

Job description

Featherless AI is hiring a Machine Learning Engineer, Inference Optimization — a full-time, remote role. Apply directly on Featherless AI's careers page below.

Machine Learning Engineer — Inference Optimization

Department: Research

Location: Remote (world)

Employment Type: FullTime

About the Role

We’re looking for a Machine Learning Engineer to own and push the limits of model inference performance at scale. You’ll work at the intersection of research and production—turning cutting-edge models into fast, reliable, and cost-efficient systems that serve real users.

This role is ideal for someone who enjoys deep technical work, profiling systems down to the kernel/GPU level, and translating research ideas into production-grade performance gains.

What You’ll Do

  • Optimize inference latency, throughput, and cost for large-scale ML models in production

  • Profile and bottleneck GPU/CPU inference pipelines (memory, kernels, batching, IO)

  • Implement and tune techniques such as:

    • Quantization (fp16, bf16, int8, fp8)

    • KV-cache optimization & reuse

    • Speculative decoding, batching, and streaming

    • Model pruning or architectural simplifications for inference

  • Collaborate with research engineers to productionize new model architectures

  • Build and maintain inference-serving systems (e.g. Triton, custom runtimes, or bespoke stacks)

  • Benchmark performance across hardware (NVIDIA / AMD GPUs, CPUs) and cloud setups

  • Improve system reliability, observability, and cost efficiency under real workloads

What We’re Looking For

  • Strong experience in ML inference optimization or high-performance ML systems

  • Solid understanding of deep learning internals (attention, memory layout, compute graphs)

  • Hands-on experience with PyTorch (or similar) and model deployment

  • Familiarity with GPU performance tuning (CUDA, ROCm, Triton, or kernel-level optimizations)

  • Experience scaling inference for real users (not just research benchmarks)

  • Comfortable working in fast-moving startup environments with ownership and ambiguity

Nice to Have

  • Experience with LLM or long-context model inference

  • Knowledge of inference frameworks (TensorRT, ONNX Runtime, vLLM, Triton)

  • Experience optimizing across different hardware vendors

  • Open-source contributions in ML systems or inference tooling

  • Background in distributed systems or low-latency services

Why Join Us

  • Real ownership over performance-critical systems

  • Direct impact on product reliability and unit economics

  • Close collaboration with research, infra, and product

  • Competitive compensation + meaningful equity at Series A

  • A team that cares about engineering quality, not hype

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Frequently asked questions

Is Machine Learning Engineer, Inference Optimization at Featherless AI a remote job?

Yes, Machine Learning Engineer, Inference Optimization at Featherless AI is a remote position. This role is open to remote candidates.

What skills are required for Machine Learning Engineer, Inference Optimization at Featherless AI?

The required skills for Machine Learning Engineer, Inference Optimization at Featherless AI include: PyTorch, Deep Learning, Machine Learning.

What is the seniority level for Machine Learning Engineer, Inference Optimization at Featherless AI?

Machine Learning Engineer, Inference Optimization at Featherless AI is a Mid Level / Senior level position.

How do I apply for Machine Learning Engineer, Inference Optimization at Featherless AI?

You can view the full description and apply for Machine Learning Engineer, Inference Optimization at Featherless AI on EchoJobs: https://echojobs.io/job/featherless-ai-machine-learning-engineer-inference-optimization-kkbtu.