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SOFTWARE

Tech Lead, Agent Eval Platform

Moveworks

Senior · 5+ yrsOn-site · Mountain view, California, United statesFull-timeListed 4d ago
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Backed by

Lightspeed India

HQ

🇮🇳 India

Open roles

80

Experience Senior · 6+ yrs (5+ years)

About the role

structured by ORI

Tech Lead, Agent Eval Platform Engineering Mountain View, CALIFORNIA, United States Full-time Apply for job Company DescriptionWho we areMoveworks: the Agentic AI Assistant platform that empowers the entire workforce. Our platform enables employees to converse with all of their business systems through natural…

What you will do

  • Build the judgement layer of our agent evaluation platform: the rubrics, the judges, the calibration against human labels, the methodology that makes a score mean something
  • Anchor on and contribute to one or more areas: Eval orchestration at scale, Agent observability and tracing, or Stateful simulation
  • Lay the foundation for using eval signal to optimize the agent, not just measure it
  • Tech lead other engineers and the end to end delivery of a project

What they are looking for

  • Experience in at least 3 of these: Distributed systems: idempotency, delivery guarantees, isolation, and — unusually central here — determinism and reproducibility; Orchestration and workflow runtimes: DAG execution, scheduling, retries, backfills, high-concurrency job systems (Temporal, Airflow, Ar
  • Ability to tech lead other engineers and the end to end delivery of a project.
  • Good communication and soft skills.
  • 10+ years building production backend or infrastructure systems
  • Strong in Python or Go (ideally both)
  • Experience designing and operating systems that handle real traffic at scale
  • Comfort making a non-deterministic system measurable.
  • Comfort with ambiguity; these are novel problems without textbook solutions
Distributed systemsAsync programmingPython asyncioGo concurrencygRPCProtobufData pipelinesObservabilityPythonGoOpenTelemetryTemporalAirflowArgoprotobuf
Full posting text

Tech Lead, Agent Eval Platform Engineering Mountain View, CALIFORNIA, United States Full-time Apply for job Company DescriptionWho we areMoveworks: the Agentic AI Assistant platform that empowers the entire workforce. Our platform enables employees to converse with all of their business systems through natural language to quickly find answers and automate tasks. Powered by the world's most advanced LLMs, our proprietary models, and a sophisticated Agentic AI platform, we're transforming how work gets done by allowing AI to take initiative, streamline complex workflows, and continuously learn and adapt.Moveworks is trusted by over 5.5 million employees at more than 350 of the world’s largest companies, including 10% of the Fortune 500, to automate everyday tasks and streamline business operations. Recognized on the Forbes Cloud 100 and AI 50 lists, Moveworks was also named one of Fast Company’s 2025 Most Innovative Companies and Inc’s Best in Business, in the Best in Innovation category. Moveworks was also recognized at Microsoft’s 2025 Partner of the Year and in 2024, received the AI Breakthrough Award. In December 2025, Moveworks was acquired by ServiceNow, marking a pivotal milestone in our journey to create a single front door to work for all business systems. By combining ServiceNow’s leading workflow automation with Moveworks’ Reasoning Engine and natural language capabilities, we deliver the AI platform for every person and every workflow. Built to go beyond basic summaries to deliver meaningful business impact. Together, our AI acts across enterprise systems to turn conversations into completed work.By joining our team, you’ll be at the forefront of the AI transformation, backed by the global scale of ServiceNow and the agility of a high-growth company. We are looking for world-class talent to help us extend agentic AI to every employee across every corner of the business. Come join us!ServiceNow: it all started in sunny San Diego, California in 2004 when a visionary engineer, Fred Luddy, saw the potential to transform how we work. Fast forward to today — ServiceNow stands as a global market leader, bringing innovative AI-enhanced technology to over 8,100 customers, including 85% of the Fortune 500®. Our intelligent cloud-based platform seamlessly connects people, systems, and processes to empower organizations to find smarter, faster, and better ways to work. But this is just the beginning of our journey. Join us as we pursue our purpose to make the world work better for everyone.Job DescriptionThe RoleMoveworks' AI agents don't just generate text — they act. They plan, call tools, and change real state in enterprise systems on behalf of 5.5 million employees. That makes the central problem of our team an unusually hard measurement problem: how do you score what an agent did — across a multi-step trajectory through a world it changed — precisely enough that the score can teach it to do better?That signal is what this role owns. You'll build the judgement layer of our agent evaluation platform: the rubrics, the judges, the calibration against human labels, the methodology that makes a score mean something. And the payoff is larger than a report card — a judge good enough to grade a trajectory is a judge good enough to train against. The same calibrated signal that explains why an agent failed becomes the reward signal that stops it failing.This isn't a pretraining role, and it isn't a testing role. It's applied ML at a point where the methodology genuinely isn't settled: LLMs judging LLMs is an open research problem, and we're working it against agents that take real, irreversible actions in stateful, multi-tenant enterprise environments. What you get to do in this role:We're hiring across three areas. You'll anchor on one and touch the others; which one is a conversation we have with you, not a slot we drop you into.Eval orchestration at scaleThe runtime that executes multi-turn agent scenarios end-to-end — stand up the environment and user simulator, drive the user↔agent↔world loop, collect transcripts, traces, and final state, run validators and scoring, tear downScheduling, retries, high-concurrency execution, and run isolation at production dataset sizesVersioned specs, datasets, and reports, with run-to-run comparison as a first-class operationConsolidating evals that run today as one-off workflows onto a single orchestration service — one source of truth, one place to schedule and retryEstablishing a reliability floor and an SLO for the harness itselfGetting to self-serve, so any team runs an eval without bespoke integrationAgent observability and tracingLeading the move to OpenTelemetry-native observability for the agent platform, replacing the parallel per-service logging, correlation, and redaction mechanisms in use todayThe span data model for agent trajectories — prompts, tool calls, plan updates, outcomes — so a trajectory is queryable, not reconstructed by hand from log filesTrace context propagation across async boundaries and sessions that stay alive for minutes or hoursMaking full prompts and completions survive the pipeline intact, and keeping eval traffic from contaminating its own dataFault attribution and cross-run diffing: which component actually broke, and what changed since the last green runThe debug surface support and harness engineers use, and the tracing contract with the team that builds the agentStateful simulationThe simulation environment itself: stateful fakes of the enterprise systems agents call — ITSM, HR, knowledge bases, inventory — backed by a real datastore that persists changes during a run, so a created ticket is visible to a later readPer-run data injection and programmatic setup/teardown so every run is hermetic and repeatableLLM-driven user simulators for open-ended personas, and scripted state-machine simulators for deterministic flowsContract-testing mocks against real API schemas in CI, so simulation fidelity can't quietly drift as vendor APIs changeAhead of us: isolated sandbox environments reproducing the config, identity, search content, and permissions an agent actually reads — provisioned from an identical baseline and torn down every runAnd across all three: laying the foundation for using eval signal to optimize the agent, not just measure it. QualificationsTo be successful in this role you have:Experience in at least 3 of these:Distributed systems: idempotency, delivery guarantees, isolation, and — unusually central here — determinism and reproducibilityOrchestration and workflow runtimes: DAG execution, scheduling, retries, backfills, high-concurrency job systems (Temporal, Airflow, Argo, or something you built yourself)Observability internals as a builder, not just a user: OpenTelemetry SDKs and collectors, semantic conventions, span context propagation, high-cardinality trace dataConcurrent and async programming: Python asyncio, Go concurrency, structured cancellationData-intensive pipelines: high-volume ingest, schema evolution, sampling and retention trade-offsgRPC/protobuf service and interface designRequired:Ability to tech lead other engineers and the end to end delivery of a project. Good communication and soft skills.10+ years building production backend or infrastructure systemsStrong in Python or Go (ideally both)Experience designing and operating systems that handle real traffic at scaleComfort making a non-deterministic system measurable. You don't need an ML background — but you should find it interesting to turn fuzzy agent behavior into a signal engineers are willing to gate releases onComfort with ambiguity; these are novel problems without textbook solutions Additional InformationWork PersonasWe approach our distributed world of work with flexibility and trust. Work personas (flexible, remote, or required in office) are categories that are assigned to ServiceNow employees depending on the nature of their work and their assigned work location. Learn more here. To determine eligibility for a work persona, ServiceNow may confirm the distance between your primary residence and the closest ServiceNow office using a third-party service.Equal Opportunity EmployerServiceNow is an equal opportunity employer. All qualified applicants will receive consideration for employment without regard to race, color, creed, religion, sex, sexual orientation, national origin or nationality, ancestry, age, disability, gender identity or expression, marital status, veteran status, or any other category protected by law. In addition, all qualified applicants with arrest or conviction records will be considered for employment in accordance with legal requirements. AccommodationsWe strive to create an accessible and inclusive experience for all candidates. If you require a reasonable accommodation to complete any part of the application process, or are unable to use this online application and need an alternative method to apply, please contact globaltalentss@servicenow.com for assistance. Export Control RegulationsFor positions requiring access to controlled technology subject to export control regulations, including the U.S. Export Administration Regulations (EAR), ServiceNow may be required to obtain export control approval from government authorities for certain individuals. All employment is contingent upon ServiceNow obtaining any export license or other approval that may be required by relevant export control authorities. From Fortune. ©2025 Fortune Media IP Limited. All rights reserved. Used under license.

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Moveworks

India

Backed by Lightspeed India

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