Agentic AI Engineer

Zohorecruit

Bengaluru Urban

On-site

INR 1,500,000 - 2,500,000

Full time

2 days ago
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Job summary

Flatworld Solutions Pvt Ltd. in Bangalore North invites an experienced Agentic AI Engineer to design and build end-to-end AI agents that plan and execute multi-step tasks, with strong focus on tool calling, memory, and state management.

You will implement multi-agent architectures, translate business processes into agent workflows, ensure safe and auditable operations, and deploy scalable services in Docker with Git.

Qualifications

  • Experience with LLM tool calling and structured outputs on at least one major API.
  • Built at least one working agent with LangGraph, CrewAI, AutoGen, OpenAI Agents SDK, Claude Agent SDK, or a well-structured custom orchestration loop.
  • Experience integrating with REST APIs, webhooks, and authentication schemes (OAuth, API keys, service accounts).
  • Experience testing agent behaviour with scenario-based test sets and inspecting execution traces.
  • Containerise with Docker and deploy services to a cloud platform; proficiency with Git.

Responsibilities

  • Design and build AI agents that plan and execute multi-step tasks using tool calling, structured outputs, and state management.
  • Build multi-agent systems — orchestrator/worker, planner/executor, and review patterns.
  • Translate business processes into agent workflows with clear goals, steps, decision points, and exit conditions.
  • Design agent memory and context: conversation state, long-running task state, and retrieval of relevant knowledge at each step.

Skills

LLM tool calling
Agent frameworks
REST API integration
Agent evaluation & tracing
Docker deployment

Tools

LangGraph
CrewAI
AutoGen
OpenAI Agents SDK
Claude Agent SDK
Git

Job description

Agentic AI Engineer

Flatworld Solutions Pvt Ltd. | Full time

Bangalore North, India | Posted on 10/05/2026

  • Design and build AI agents that plan and execute multi-step tasks using tool calling, structured outputs, and state management.
  • Build multi-agent systems — orchestrator/worker, planner/executor, and review patterns — and decide when a single agent is the better choice.
  • Translate business processes from BA and solution documents into agent workflows with clear goals, steps, decision points, and exit conditions.
  • Design agent memory and context: conversation state, long-running task state, and retrieval of relevant knowledge at each step.
B. Tools, Integrations & MCP
  • Build and maintain the tools agents use — API connectors, database queries, document actions, and
  • Develop Model Context Protocol (MCP) servers that expose client systems to agents in a secure, reusable way.
  • Integrate agents with enterprise platforms such as Salesforce, ServiceNow, SAP, Microsoft 365, Google Workspace, and telephony systems.
  • Write clear tool descriptions, input schemas, and error messages so agents use tools correctly and recover when a call fails.
C. Reliability, Safety & Evaluation
  • Build evaluation suites for agent behaviour: task success rate, tool-selection accuracy, step count, cost per task, and failure analysis on real traces.
  • Design human-in-the-loop checkpoints for high-impact actions — approvals, escalations, and handoff to human agents.
  • Enforce guardrails: least-privilege tool access, prompt injection defences, action limits, timeouts, and safe
  • Instrument full traceability — log every model call, tool call, and decision so any agent run can be replayed and audited.
  • Control cost and latency through model routing, caching, context management, and limits on runaway loops.
  • Deploy agents as reliable services — containerised, observable, with queueing and retry handling for long-running tasks.
  • Prepare demo-ready agent workflows for client pitches, working with the AI Solutions Lead on scenarios that show clear business value.
  • Contribute reusable agent templates, tool libraries, and MCP connectors to Flatworld's AI accelerator library.
  • Document agent architecture, tool inventories, permissions, and known limitations for every build.
Requirements
Mandatory Technical Requirements

The following are non-negotiable for this role:

  • integration. [MANDATORY]
  • LLM Tool Calling: Hands-on experience building applications with LLM tool/function calling and structured outputs on at least one major API (Anthropic, OpenAI, Google, or Azure OpenAI). [MANDATORY]
  • Agent Frameworks: Built at least one working agent with LangGraph, CrewAI, AutoGen, OpenAI Agents SDK, Claude Agent SDK, or a well-structured custom orchestration loop. [MANDATORY]
  • System Integration: Experience integrating with REST APIs, webhooks, and authentication schemes (OAuth, API keys, service accounts). [MANDATORY]
  • Agent Evaluation & Tracing: Practice of testing agent behaviour with scenario-based test sets and inspecting execution traces — not just manual trial runs. [MANDATORY]
  • Deployment: Ability to containerise with Docker and deploy services to a cloud platform; proficiency with Git. [MANDATORY]
Strongly Preferred
  • Model Context Protocol (MCP): Building or deploying MCP servers and clients.
  • RAG: Retrieval pipelines and vector databases (Pinecone, Qdrant, Chroma, or pgvector) used as agent knowledge sources.
  • Observability: Agent tracing and evaluation tools such as LangSmith, Langfuse, Arize Phoenix, or OpenTelemetry.
  • Workflow & Queues: Durable workflow or task-queue tools (Temporal, Celery, Redis, or cloud-native
  • Cloud Agent Platforms: AWS Bedrock Agents, Azure AI Foundry Agent Service, or Google Vertex AI Agent Builder.
Advantageous

Not required, but a clear differentiator for this role:

  • Voice agents — real-time speech-to-text, text-to-speech, and telephony integration for contact centre automation.
  • without APIs.
  • Background in RPA (UiPath, Automation Anywhere, Power Automate) and moving rule-based bots to Agentic workflows.
  • Experience with enterprise platforms such as SAP, IBM Maximo, or ServiceNow.
  • Awareness of data protection requirements (GDPR, HIPAA, India's DPDP Act) as they apply to autonomous systems.
What We Offer
  • Work at the front of applied AI — building agents that automate real enterprise processes, not just chat interfaces.
  • Variety across industries and systems, with a direct line from your build to a client decision.
  • Access to current commercial and open-weight models and freedom to choose the right framework for
  • Mentorship from the AI Solutions Lead and AI Solution Architect, with exposure to pre-sales and solution design.
  • Learning budget for AI upskilling, conferences, and cloud certifications.
  • Competitive compensation with a clear path toward Senior Agentic AI Engineer or AI Solution Architect
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