Resumo da vaga

Software Engineer- Voice AI (Inference Runtime)

Requisitos e responsabilidades

Conteúdo da vaga extraído em seções para revisão mais rápida.

Details

  • Develop world-class model serving stack for state-of-the-art open-source voice models - reduce end-to-end and tail latency (p95/p99), increase throughput, and improve GPU efficiency via profiling, runtime tuning, and server-level optimizations.
  • Build large-scale, real-time infrastructure for multi-model voice agents - orchestrate STT, TTS, and agent components with streaming I/O to meet customer SLOs.
  • Design tight training and inference iteration loops for voice model customization - enable fast evaluation, safe rollout, and rapid experimentation for custom voice model development.
  • Past projects:The world's fastest Whisper — with streaming and diarizationCanopy Labs selects Baseten for Orpheus TTS inference
  • The world's fastest Whisper — with streaming and diarization
  • Canopy Labs selects Baseten for Orpheus TTS inference
  • The world's fastest Whisper — with streaming and diarization
  • Canopy Labs selects Baseten for Orpheus TTS inference
  • Own and lead Voice AI product areas end-to-end - from architecture and system design through implementation, rollout, and long-term production operations.
  • Design, build, and operate real-time, large-scale, high-performance model serving systems for STT, TTS, and voice agent workloads for mission-critical customer deployments
  • Drive cross-team collaboration with sister engineering teams to solve full-stack technical problems, align on priorities, and coordinate end-to-end delivery across the product surface area
  • Mentor teammates through code reviews, design docs, and technical leadership.
  • Bachelor's degree or higher in Computer Science or related field
  • Proven track record owning production-grade real-time, large-scale systems where tail latency (p99) matters.
  • Proficient coding abilities in one or more popular programming or scripting languages; Python proficiency is a plus.
  • Good taste in product, particularly developer-oriented tools
  • Interest in ML/AI infrastructure and willingness to learn
  • Strong collaboration and communication skills
  • Comfortable using AI coding assistants (e.g., Claude Code, Codex, Cursor) as a daily productivity multiplier — as an AI-native company, we see this as a must-have skill.
  • Experience implementing pipeline-level model runtime optimizations such as dynamic batching, async scheduling, or decode-side throughput improvements.
  • Experience building developer platforms: SDKs, CLIs, APIs, and self-serve workflows for ML or infrastructure products.
  • Experience with containerization and orchestration technologies (Docker, Kubernetes), service meshes, or distributed scheduling.
  • Familiarity with speech/audio ML models (STT, TTS, speech-to-speech)
  • Familiarity with model-serving runtimes (vLLM, TensorRT, ONNX).
  • Familiarity with systems-level performance profiling across host-device boundaries (e.g. PyTorch Profiler), diagnosing GPU utilization issues
  • Exposure to customer-facing engineering: pre-sales prototyping, technical discovery, or working directly with customers to ship solutions.
  • Competitive compensation, including meaningful equity.
  • 100% coverage of medical, dental, and vision insurance for employee and dependents
  • Flexible PTO policy including company wide Winter Break (our offices are closed from Christmas Eve to New Year's Day!)
  • Paid parental leave
  • Fertility and family-building stipend through Carrot
  • Company-facilitated 401(k)
  • Exposure to a variety of ML startups, offering unparalleled learning and networking opportunities.
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FocoVoice AIÁrea da vaga
Sinal de senioridadeNível abertoNível do candidato
StackDocker, Kubernetes, PythonSkills principais
Localização2 países aceitosElegibilidade

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