AI Engineer (Agentic Systems)

SureBright

Delhi

On-site

INR 800,000 - 1,200,000

Full time

14 days+

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Benefits offered by this job

Direct exposure to founders
Career growth opportunities
Participation in a growing market

Job summary

SureBright in Delhi is seeking a skilled AI Developer to build agentic workflows improving operational efficiency in insurance. This role offers exposure to foundational business operations, allowing you to implement innovative AI solutions.

Your responsibilities will include designing production-ready AI systems and collaborating across departments. Ideal candidates will have experience with machine learning and the ability to thrive in a fast-paced environment.

Qualifications

  • 1+ years of experience building ML/LLM systems in production.
  • Proven experience with multi-step workflows and orchestration.
  • Deep expertise in RAG and retrieval systems.

Responsibilities

  • Design and implement production-grade AI agents.
  • Build core ML systems for warranty and claims.
  • Partner with product teams for automation.

Skills

Machine Learning
Software Engineering
AI systems development
Reliability Engineering

Job description

What You’ll Do

This is a high-ownership “do whatever it takes” role for someone who wants to operate at founder speed, learn the full stack of an insurance/warranty business, and ship work that directly moves revenue, conversion, and retention.

You will build the agentic layer of our core product: AI systems that reason, take actions, and reliably complete workflows across pricing/underwriting, policy issuance, claims intake, adjudication, fulfillment (repair/replacement/reimbursement), and other parts of the business.

Key Responsibilities
  • Design and ship production‑grade AI agents that run real business processes (not demos)
  • Build agentic architectures: orchestration, tool calling, state machines, memory, permissions, audit trails, human‑in‑the‑loop, and fallback paths
  • Own our RAG platform end‑to‑end: ingestion, chunking, embeddings, retrieval, reranking, citations/grounding, and hallucination mitigation
  • Build evaluation and monitoring systems: offline eval sets, regression tests, online metrics, drift detection, and red‑team suites
  • Implement model optimization: prompt systems, structured outputs, fine‑tuning where appropriate, latency/cost optimization, caching, and throughput tuning
  • Build core ML systems for warranty/claims: document understanding, extraction, classification, anomaly/fraud signals, decision support, and SLA routing
  • Partner tightly with product/ops to translate real workflows into deterministic, testable, compliant automation
What You’ll Build (examples)
  • Underwriting/pricing agents: real‑time quote decisions using merchant/product/context signals with strict guardrails and auditability
  • Claims copilot + auto‑adjudication engine: intake triage, evidence requests, decision proposals with explanation, vendor routing, reimbursement automation
  • OEM warranty parsing system: turn messy manufacturer policies into machine‑readable coverage logic
  • Internal ops copilots: tooling that reduces manual work and increases consistency across customer support, compliance, and finance
Requirements (must have)
  • 1+ years building and shipping ML/LLM systems in production (or equivalent founder‑level experience)
  • Proven experience building agentic products/companies: multi‑step workflows, tool use, orchestration, reliability engineering
  • Deep hands‑on expertise in:
    • RAG and retrieval systems (vector databases, reranking, grounding strategies)
    • LLM evals (golden sets, automated judging, human eval, regression pipelines)
    • Prompting and structured outputs (schemas, function/tool calling, robustness)
    • Model training/fine‑tuning fundamentals and tradeoffs (when to tune vs prompt vs retrieve)
  • Strong software engineering: clean APIs, testing, observability, performance tuning, secure‑by‑default design
  • Comfortable owning ambiguous problems end‑to‑end and driving them to measurable outcomes
Strong preference (nice to have)
  • Experience building systems with compliance/audit requirements (fintech/insurance/health/enterprise)
  • Experience with document AI at scale (PDFs, images, messy inputs), and extracting structured truth reliably
  • Experience designing human‑in‑the‑loop workflows and escalation rules for high‑stakes decisions
  • Experience with infra for LLMs: model hosting, batching, streaming, caching, prompt/version management
  • Startup or ex‑founder background, especially shipping 0→1 products fast
What Success Looks Like (first 90 Days)
  • You ship an agentic workflow that replaces meaningful manual ops work and improves a measurable metric (cycle time, accuracy, cost per claim, attach rate, CSAT)
  • You implement an eval harness that catches regressions before production and gives us a reliable “quality score” per workflow
  • You establish a scalable architecture pattern for agents (permissions, audit logs, observability, fallbacks) that the team can replicate
Tech environment

We’re cloud‑native and move fast. Expect Python for ML/agents, TypeScript for product surfaces, Postgres for systems of record, event‑driven services, and a modern LLM + retrieval stack with strong observability and CI/CD. And AWS+Azure for infra.

Why this role is special
  • Build an AI‑native category‑defining company in a massive market
  • Direct founder exposure and high leverage: your work will change the trajectory of the company
  • Real breadth: growth + underwriting/claims ops + product, in one seat
  • Career accelerant: if you perform, your scope and title will grow quickly
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