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Lead Engineer ( Agentic AI)

Job Description - Lead Engineer ( Agentic AI)

ABOUT YUBI

Yubi (formerly CredAvenue) is redefining global debt markets by freeing the flow of finance between borrowers, lenders, and investors — the world's possibility platform for the discovery, investment, fulfilment, and collection of any debt solution. In March 2022, we became India's fastest fintech unicorn with a $137M Series B. Our platforms — Yubi Credit Marketplace, Yubi Invest, Financial Services Platform, Spocto, and Corpository — serve 17,000+ enterprises and 6,200+ investors, facilitating over ₹1,40,000 crore in debt volumes. Backed by Insight Partners, Sequoia Capital, Dragoneer, B Capital, LightSpeed, and Lightrock.

ROLE OVERVIEW

As a Lead Engineer (Agentic AI) at Yubi, you will architect and deliver production-grade intelligent systems that redefine how debt capital flows between borrowers, lenders, and investors. You will lead a pod of engineers, own the technical roadmap for key AI agent capabilities, and work hand-in-hand with Product and Data Science to bring ambitious ideas to life at scale. This role demands deep full-stack expertise across Java, a strong grasp of LLM orchestration, and the leadership instinct to elevate the entire team around you.



KEY RESPONSIBILITIES

Technical Leadership & Architecture

  • Own the end-to-end architecture of multi-agent systems — from LLM reasoning layers to React dashboards, Python, and Java microservices.

  • Define technical standards, design patterns, and coding practices for the AI platform engineering pod.

  • Lead design reviews, ensuring systems are scalable, secure, observable, and maintainable.

  • Evaluate emerging AI frameworks and tools; make adoption decisions that balance innovation with production reliability.

  • Drive migration of rule-based financial workflows to LLM-native agentic pipelines.

Agentic AI Engineering

  • Architect multi-agent orchestration using LangGraph, AutoGen, or CrewAI — supporting tool use, memory, planning, and reflection loops.

  • Design stateful agent memory systems combining short-term context windows with long-term vector stores for financial workflows.

  • Build reliable prompt engineering strategies with versioning, A/B testing, and rollback capabilities.

  • Implement compliance-aware guardrails: PII masking, hallucination detection, regulatory disclosure injection.

  • Oversee RAG pipeline design — chunking strategies, embedding model selection, retrieval optimisation, and re-ranking.


People & Delivery

  • Lead, mentor, and grow a team of 3–6 engineers; conduct regular 1:1s, code reviews, and career development conversations.

  • Drive sprint planning, estimation, and delivery commitments in close partnership with the Product Manager.

  • Participate in senior technical hiring — define interview criteria and assess engineering bar.




Requirements

REQUIRED SKILLS & QUALIFICATIONS

Technical

  • 5–8 years of full-stack engineering experience, with at least 1-2 years in AI/LLM product development.

  • Very strong problem solving capability . Doing HLD and LLD for a given problem 

  • Good understanding of data structures , algorithms 

  • Good Understanding of CI/CD  pipelines and test driven development 

  • Proven experience building production LLM-powered products — prompt engineering, agent orchestration, output validation.

  • Hands-on with LangChain, LangGraph, AutoGen, or equivalent agent frameworks.

  • Strong understanding of RAG, vector search, and embedding-based retrieval.

  • Experience with Kafka or similar message brokers; familiarity with event-driven architecture patterns.

  • Kubernetes, Docker, and cloud-native AWS experience at production scale.

Leadership & Soft Skills

  • Proven track record of leading engineering teams and delivering complex projects end-to-end.

  • Excellent communication — able to translate AI system behaviour to product, business, and compliance stakeholders.

  • Strong systems thinker with the ability to decompose complex financial workflows into reliable automated steps.

  • B.E. / B.Tech / M.Tech in Computer Science or equivalent; advanced degree a plus.



Benefits



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