Posted on: 23/06/2026
About the Role :
GrowthArc is looking for a React + AI Engineer who combines strong frontend engineering with hands-on experience building AI and LLM-powered systems in production.
You will work on building intelligent web applications, agentic workflows, and dynamic React interfaces that solve real business problems at scale.
What You Will Work On :
- Build and scale complex React applications with multi-step forms, dynamic page builders, and document management.
- Design AI-assisted workflows that reduce manual intervention using agents and LLMs.
- Develop agentic systems with MCP tooling, multi-agent orchestration, and RAG pipelines.
- Integrate LLMs into frontend and backend workflows including prompt engineering, tool routing, and structured outputs.
- Build observability into AI systems including logging, tracing, evals, and guardrails.
Must-Have Skills :
1. React & Frontend :
- Deep knowledge of React hooks such as useMemo, useCallback, useContext, and useReducer.
- Complex form management with react-hook-form and schema validation using Zod or Yup.
- State management using Context, Redux, or Zustand with an understanding of when to use which.
- Performance optimisation including code splitting, memoization, and virtualized lists.
- Component architecture including atomic design, design systems, and reusable libraries.
- Strong system design with the ability to architect large-scale React applications from scratch.
2. AI / Agentic Systems :
- Clear understanding of Agentic systems including planning, tool use, looping, and agent handoffs.
- Hands-on experience with MCP tools and agent-to-tool routing logic.
- Multi-agent orchestration including supervisor/worker, sequential, and parallel patterns.
- Prompt engineering including system roles, few-shot, chain-of-thought, and structured outputs.
- RAG implementation including Hybrid RAG (vector + BM25) at minimum, with Knowledge Graph RAG as a plus.
- AI observability including tracing LLM calls, evals like RAGAS or DeepEval, and guardrails.
3. Backend & System Design :
- API design including RESTful contracts, gateway patterns, and auth flows.
- Backend design for document ingestion, approval routing, and status tracking.
- Observability including structured logs, metrics, and distributed tracing.
4. AI Frameworks & Tools :
- LangChain, LlamaIndex, or similar LLM orchestration frameworks.
- Vector databases.
- Knowledge graph tooling such as Neo4j or similar.
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