AI Voice Copilot Architect (Real-Time Voice Pipeline)
Temporary
Neurons Lab
Objective
Own the technical architecture and delivery of the voice copilot from validated PoC to production.
- Hit the bar this client tests against: latency , accuracy , concurrency , and cost .
- Keep expectations aligned: production polish is in scope now; protect the team from silent scope creep.
- Transfer knowledge continuously to the client's team and Neurons Lab engineers.
Areas of Responsibility
Technical architecture & hands-on implementation
- Own the full pipeline: streaming speech-to-text , LLM field extraction , Chrome-extension delivery , and AWS infrastructure .
- Drive latency work: cut P95 from ~6s toward ~2s ; remove post-processing corner cases (occasional ~1min lag on one field type).
- Run model A/B tests (current pair: Claude Haiku vs GPT Luna ) with golden-set evaluation for phonetic name and email accuracy.
- Own evaluation and cost: Langfuse traces , accuracy dashboards, real per-call cost from live calls, and an optimization plan.
- Harden for production: 5–10+ concurrent calls , strict data isolation between users, monitoring, alerting, and safe rollback.
- Ship epics end to end (example: the SES email briefing service ); always keep a demo fallback so a live session never fails.
Working with client stakeholders
- Front technical discussions with a meticulous client; VCCs test edge cases and expect production quality.
- Present concrete system behavior, with numbers — this account rewards evidence, not slides.
- Hold the scope line: tie every feedback item to the SOW; route roadmap items (learning loop, persistent memory) to future phases.
- Keep internal discussions internal; all client-facing materials pass ADM review before sending.
Team & knowledge
- Lead the AI Engineer and the pod: set tasks, review output, unblock fast.
- Absorb the handover from the outgoing architect (0.15–0.2 FTE supervision window ) and become independent fast.
- Run knowledge-transfer sessions; the project must have no single point of failure.
- Support the production SOW with estimates and architecture options when the account team asks.
Skills
- Real-time voice pipelines: streaming STT , turn handling, low-latency LLM inference — hands-on.
- LLM engineering: prompt engineering , structured extraction , guardrails, model A/B evaluation .
- Observability and evals: Langfuse or similar; golden datasets; latency, accuracy, and cost dashboards.
- AWS: Bedrock , serverless patterns, SES ; token economics and per-call cost engineering.
- Full-stack pragmatism: strong Python ; enough TypeScript / Chrome-extension knowledge to own the integration.
- Clear spoken and written English for demanding US executives.
Knowledge
- Contact-center / agent-assist patterns and metrics ( handle time , cost per call , concurrency ).
- Production LLM operations: load testing, data isolation, incident handling.
- Nice to have: empathy-sensitive domains (healthcare, veterinary, insurance) and PE-sponsored rollouts.
Experience
Key characteristics (screen for all four):
- Voice AI in production — mandatory. Shipped at least one real-time voice or speech product to real users (agent assist, voice bot, live transcription copilot). Candidates will demo real artifacts at the interview.
- 6+ years hands-on AI/ML engineering , with strong recent LLM production practice.
- Latency and reliability record. Can show measured P95 reductions and concurrency fixes on a live system.
- Consulting / client-facing seniority. Calm and precise under detailed UAT scrutiny; manages expectations well.
Nice to have:
- Chrome extension delivery; telephony / streaming stacks ( Amazon Connect , Twilio , LiveKit ).
- Langfuse in production .
- US client experience with Eastern-time overlap.
Vacancy posted 16 days ago
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