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Senior AI Engineer — Inference & Agent Systems

Arcana Analytics · United States · Active · Greenhouse

Job facts

FieldValue
CompanyArcana Analytics
TitleSenior AI Engineer — Inference & Agent Systems
Normalized title-
Department / teamEngineering
LocationUnited States
Work model-
Employment type-
Salary-
Statusactive
ATS providerGreenhouse
Posted / first seen2026-03-15 / 2026-05-29
Changed / last seen2026-05-29 / 2026-06-06

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Department jobsActive postings in Engineering.Open
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Original postingCanonical source or apply URL captured from the ATS.Open

Linked records

CompanyArcana Analytics
Sourcefc09722d-3f1a-45c5-b83e-6a867305d2fb
ATS providerGreenhouse

Description

Title: Applied AI Engineer — Inference & Agent Systems Location: United States What We're Building Arcana is building AI agents that synthesize information across heterogeneous sources and deliver structured, reasoned answers in real time. The product only works if the agents are fast, reliable, and correct, not approximately correct. Our stack: Go + Temporal for orchestration, a Plan-Execute-Synthesize agent architecture, and an evaluation harness we use to measure every regression. The problems are hard. The latency bar is aggressive. The accuracy requirements are unforgiving. The Work Inference Optimization - Drive TTFT below 400ms for multi-step agent pipelines - Streaming optimization: first token to user while sub-agents are still running - KV cache strategy, prompt compression, dynamic context window management - Multi-provider routing: model selection by latency, cost, and task type across OpenAI, Anthropic, Gemini, and open-weight models Agent Architecture - Design and implement Plan-Execute-Synthesize pipelines that run sub-agents in parallel DAGs, not sequential chains - Build reliable orchestration on top of Temporal: retries, timeouts, partial failure recovery, idempotency - Structured output enforcement: JSON schema validation, retry loops on malformed LLM output, graceful degradation - Tool call design: schema design that LLMs actually follow reliably across providers Evaluation & Harness - Own the eval framework end to end: ground truth datasets, automated scoring pipelines, regression detection on every PR - LLM-as-judge pipelines for qualitative output assessment - Latency regression testing - p50/p95/p99 tracked across every deployment - Adversarial test case design: ambiguous queries, missing data, conflicting sources, malformed tool responses Infrastructure - Model serving and cold start optimization - Async worker architecture for parallel sub-agent execution - Observability: trace every token, every tool call, every synthesis step What We're Looking For You've built something that runs in production at a meaningful scale and you understand why it's fast (or why it isn't). Strong signal : - You've worked on inference pipelines where TTFT was the primary metric and you moved it meaningfully - You've built multi-step agent systems and you know where they break not from reading papers but from watching them fail in production - You've written eval harnesses from scratch and you have opinions about what makes a ground truth dataset actually useful - You've debugged LLM non-determinism in production and built systems resilient to it - You've worked with streaming LLM responses and built infrastructure around partial output handling Weaker signal (but not disqualifying): - You've fine-tuned models but haven't shipped inference systems - You've used LangChain/LlamaIndex but haven't built the layer underneath - Strong ML research background without systems exposure Stack familiarity (we care more about depth than match): Go, Python, Temporal, Kafka, PostgreSQL, Docker Why This Role The problems here don't have blog posts about them yet. Parallel agent DAG execution under hard latency budgets, streaming synthesis across partial sub-agent results, eval harnesses for non-deterministic multi-step systems: these are genuinely unsolved at production quality. Small team. High ownership. Every engineer's decisions ship to production. Who We Want to Hear From You've shipped inference systems at: - A real-time AI product (search, coding assistant, chat at scale) - A model serving infrastructure company - An agent platform (any domain) Or you've built eval/harness infrastructure that a team of 10+ engineers actually trusted to catch regressions. Apply Send to: [[email protected]] Include: One system you built where latency was the primary constraint what you measured, what you changed, what moved Link to anything public (code, writing, talks) No cover letter required We respond to every application.

Full job record

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Org IDb3712482-174c-4483-8a2f-2cabba603d2e
Source IDfc09722d-3f1a-45c5-b83e-6a867305d2fb
Board IDfc09722d-3f1a-45c5-b83e-6a867305d2fb
Providergreenhouse
Provider Job Key4183986009
TitleSenior AI Engineer — Inference & Agent Systems
Normalized Title
Statusactive
Activeyes
Location TextUnited States
DepartmentEngineering
Team
Employment Type
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Remote Policy
CountryUnited States
Region
City
Salary Raw
Salary Min
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Salary Currency
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Source URLhttps://job-boards.greenhouse.io/arcanaanalytics/jobs/4183986009
Apply URLhttps://job-boards.greenhouse.io/arcanaanalytics/jobs/4183986009
First Seen At2026-05-29 22:42:49Z
Last Seen At2026-06-06 07:36:03Z
Last Checked At2026-06-06 07:36:03Z
Last Changed At2026-05-29 22:42:49Z
Inactive At
Source Posted At2026-03-15 15:15:55Z
Source Updated At2026-03-16 11:39:49Z
Raw Payload Uris3://job-postings-prod-raw-590183727216/raw/provider=greenhouse/board=arcanaanalytics/date=2026-06-06/2026-06-06T07-36-03-360Z-351f9dda0f642f278be8111af5d936dfe982abea7295f01dc594595180c0888d.json
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