Lead AI Engineer-8-12Yrs-NCR

Crescendo Global Leadership Hiring India

Dadri, Gurugram District, Delhi

Hybrid

INR 1,800,000 - 3,200,000

Full time

12 days ago
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Job summary

Crescendo Global Leadership Hiring India is seeking an experienced software engineer to build AI applications, copilots, and agentic workflows end-to-end. You will leverage cutting-edge toolsets and SDKs to deliver rapid prototypes and scalable solutions for enterprise clients.

The role emphasizes integration with enterprise data, robust testing, observability, and cost-aware productionization, while collaborating with architects, data scientists, and designers across fast-moving AI projects.

Qualifications

  • 4–8 years of software engineering experience with 1–2+ years building GenAI/LLM applications.
  • Portfolio of shipped AI work (products, prototypes, demos).
  • Bachelor’s degree in CS, Engineering, or related field.
  • Demonstrated fluency with AI-native development tools in real projects.
  • Strong problem-solving and product sense; builds that get used.
  • Clear written and verbal communication; able to demo to tech & business audiences.

Responsibilities

  • Rapid prototyping & application development of AI copilots and agentic workflows end-to-end.
  • Develop with agentic SDKs & frameworks; implement RAG pipelines and tool calls.
  • Integrate models with enterprise data sources and APIs with proper auth and error handling.
  • Ensure production readiness with testing, observability, and cost controls.
  • Collaborate with architects, data scientists, and designers; contribute to demos and accelerators.
  • Advocate AI-assisted development practices to boost team velocity.

Skills

Python
TypeScript/JavaScript
LLM integration
Prompt engineering
RAG pipelines
Cloud (AWS/Azure/GCP)
CI/CD
Git
Testing & observability
Full-stack prototyping

Education

Bachelor's degree

Tools

Cursor
Claude Code
Replit
Google AI Studio
GitHub Copilot

Job description

Role Summary
  • Development and production-scale delivery of Solutions & Platform components
  • Hand-On with new age technologies-programming-tooling e.g. Context Engineering, Knowledge Graphs, Loop Engineering, and Agents Harness
  • Experience of SDKs-DevSecOps Pipelines-Code Repositories
  • Knowledge of Cloud & Multi-Modal Systems
  • Implementation of Enterprise design principles and considerations such as Responsible & Secure AI, Observability, LLM Ops, AI Runtime, and Token Economics
  • Aligned to Agentic AI Technical Architecture practices and standards
Key Responsibilities
1. Rapid Prototyping & Application Development
  • Build AI applications, copilots, and agentic workflows end-to-end UI, APIs, business logic, and model integration.
  • Use rapid development tools (Cursor, Claude Code, Replit, Google AI Studio) to compress build cycles and iterate quickly with users and stakeholders.
  • Turn loosely-defined requirements into working demos and prototypes within days, then refine based on feedback.
2. Agentic & GenAI Engineering
  • Develop with agentic SDKs and frameworks – OpenAI Agents SDK, Anthropic Claude (Agent SDK / API), Google Gemini & ADK, LangChain/LangGraph.
  • Implement RAG pipelines, tool/function calling, structured outputs, and prompt engineering with systematic testing and evals.
  • Integrate models and agents with enterprise data sources and APIs, handling auth, rate limits, and error paths properly.
3. Engineering Quality & Productionization
  • Write clean, testable, well-documented code; use Git, containers, and CI/CD as standard practice.
  • Partner with Forward Deployment Engineers and platform teams to take successful prototypes into production, adding monitoring, guardrails, and cost controls.
  • Balance speed and quality pragmatically – knowing when to hack and when to harden.
4. Collaboration & Continuous Learning
  • Work closely with architects, data scientists, and designers; contribute to demos, accelerators, and internal hackathons.
  • Stay current with the fast-moving model and tooling landscape, and share learnings across the team.
  • Evangelize AI-assisted development practices that raise the whole team’s velocity.
Technical Skills & Tooling (Hands-On)
  • Rapid development tools as daily drivers: Cursor, Claude Code, Replit, Google AI Studio, GitHub Copilot – demonstrated ability to ship real software with AI-assisted workflows.
  • Agentic SDKs & frameworks: hands-on experience with OpenAI Agents SDK, Anthropic Claude APIs/Agent SDK, Google Gemini/ADK, and LangChain or LangGraph.
  • Strong programming skills in Python and/or TypeScript/JavaScript; comfort building full-stack prototypes (React/Node) and REST APIs.
  • LLM application patterns: prompt engineering, function/tool calling, structured outputs, RAG with vector stores (pgvector, Pinecone, FAISS, or similar).
  • Testing & observability basics: writing evals, using tracing tools (LangSmith, Langfuse, or similar), and monitoring cost/latency/quality.
  • Engineering foundations: Git, Docker, CI/CD, and at least one cloud (AWS/Azure/GCP).
  • Good to have: voice/multimodal experience (ElevenLabs, HeyGen), MCP-based tool integration, fine-tuning or open-source LLM experience.
Key Outcomes & Success Metrics
  • Speed of delivery: consistent idea-to-prototype turnaround in days and prototype-to-production in weeks.
  • Volume and quality of shipped work: applications, demos, and accelerators that are actually used by stakeholders and internal teams.
  • Reliability of what ships: low defect rates, sensible test/eval coverage, and predictable cost/latency behavior.
  • Contribution to reuse: components, patterns, and utilities adopted by other engineers.
  • Team velocity uplift through shared AI-assisted development practices.
Required Experience & Qualifications
  • 4–8 years of software engineering experience, with 1–2+ years building GenAI/LLM applications hands-on.
  • A portfolio of shipped AI work – products, prototypes, GitHub projects, or demos you can walk us through.
  • Bachelor’s degree in Computer Science, Engineering, or related field (or equivalent practical experience).
  • Demonstrated fluency with AI-native development tools (Cursor, Claude Code, Replit, AI Studio) in real projects – not just experimentation.
  • Strong problem-solving skills and product sense – you care about whether the thing you built actually gets used.
  • Clear written and verbal communication; comfortable demoing your work to technical and business audiences.
Behavioral Expectations
  • Builder’s mindset – bias toward shipping, learning from real usage, and iterating.
  • Relentless curiosity – self-driven learning in a landscape where the best tool changes every quarter.
  • Pragmatic judgment on speed vs. quality trade-offs.
  • Low-ego collaboration – gives and takes feedback well, helps teammates move faster.
  • Responsible AI awareness – builds with security, privacy, and ethical use in mind from day one.
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