Agentic AI ILT Trainer / Instructor (Meerut)
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Meerut, India
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Posted: less than a week ago
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- Deliver structured instructor-led sessions covering the full curriculum across Weeks 0–10
- Ensure each session gives participants the conceptual and practical grounding they need to complete that week's milestone
- Use worked examples, live coding walkthroughs, and domain-grounded scenarios drawn from the insurance claims use case
- Build and maintain session materials (slides, notebooks, reference code) aligned to the weekly curriculum Engineering Clinics (included in the 40 hours)
- Facilitate four mandatory engineering clinics at Weeks 3, 6, 7, and 8 (30–45 minutes each)
- Review teams' architectural designs before implementation begins (state machines, harness design, multi-agent responsibility maps, judge calibration)
- Use a Socratic approach. Ask questions to surface assumptions rather than prescribe solutions
- Identify structural design flaws early and provide actionable correction before teams build on a faulty foundation Mentorship (25 hours)
- Provide async and/or live mentorship support to teams across the 10-week program
- Support teams in navigating technical blockers, architectural decisions, and milestone preparation
- Participate in (or observe) the three mock client interactions at Weeks 0, 5, and 10 to provide post-session coaching Required Qualifications Non-Negotiable
- Hands-on experience building and deploying production agentic AI systems (not demos or prototypes)
- Proficiency with Google Cloud Platform, specifically Vertex AI, Cloud Run, Firestore, Cloud Trace, Cloud Build, and Secret Manager
- Practical experience with agentic frameworks, Google ADK, LangGraph, or equivalent
- Experience with RAG system design, including grounding, chunking strategies, retrieval evaluation, and citation-aware response design
- Understanding of LLM evaluation methodologies, LLM-as-judge design, judge calibration (Cohen's kappa), and EvalOps pipelines
- Familiarity with OWASP LLM Top 10 and AI safety/security practices including prompt injection, PII redaction, and tool poisoning
- Prior experience delivering technical training, workshops, or mentorship to engineering audiences Strongly Preferred
- Experience with multi-agent system design, supervisor-worker patterns, A2A handoffs, memory governance
- Familiarity with MCP (Model Context Protocol) for enterprise tool integration
- Experience with stateful workflow design, state machines, HITL gates, Firestore checkpointing
- Exposure to FinOps for LLM workloads, per-call cost tracking, model routing, token optimization
- Experience designing streaming UIs for agentic systems (SSE, Next.js or equivalent)
- Background in enterprise software delivery, understanding of ADRs, CI/CD pipelines, OpenAPI specs, and production deployment standards Nice to Have
- Domain familiarity with insurance claims processing (FNOL-to-settlement lifecycle, claim types, fraud signals, regulatory HITL requirements)
- Experience with GraphRAG, multimodal inputs, or advanced retrieval techniques What We Are NOT Looking For
- Instructors who teach from slides without hands-on delivery experience
- Academics or researchers without production deployment experience
- Generalist AI trainers without specific agentic systems or GCP depth
- Vendors pitching a pre-built curriculum as we have our own curriculum Engagement Structure
- Total duration: 10 weeks (target start: June 7, 2025)
- ILT sessions: approximately 4 hours per week, delivered in focused blocks (exact schedule to be agreed with L&D;)
- Engineering clinics: 4 sessions of 30–45 minutes each at Weeks 3, 6, 7, and 8
- Mentorship: approximately 2.5 hours per week, delivered async and/or via live office hours
- Mock client interactions: trainer participation/observation at Weeks 0, 5, and 10 (post-session debrief coaching)
- Pre-program: 2–3 hours of curriculum alignment and session planning with L&D; before kickoff
- Compensation: 3 lacs What We Provide
- Detailed week-by-week curriculum with milestone specifications, supervisor checks, and engineering standards rubric
- Full client data package: synthetic policy documents, claim records, adjuster SOPs, historical resolved claims, and mock enterprise API specs
- GCP project access for session delivery and hands-on demonstrations
- L&D; coordination support for scheduling, logistics, and Workday tracking This program is designed to produce engineers who can ship agentic AI to production clients. We are looking for a trainer who has done exactly that. Apply on Kit Job: kitjob.in/job/4mn8c2
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Company nameQuantiphi
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Job positionAgentic AI ILT Trainer / Instructor (Meerut)
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