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Applied AI Engineer

Applied AI Engineer

volto consulting
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Job Description

Lead / Senior Applied AI Engineer

Experience: 5–15 Years

Employment Type: Full-Time

Location: Hyderabad (only local Candidates)

Job Description

We are looking for a Lead / Senior Applied AI Engineer with strong hands-on experience in Generative AI, Agentic AI, LLM orchestration, and enterprise AI solutions. The ideal candidate should have experience designing and deploying production-grade AI applications using Python, LangGraph, Agentic RAG, Multi-Agent Systems, and modern LLM technologies.

Key Responsibilities

  • Design and develop Agentic AI and Multi-Agent Systems using Python and LangGraph.
  • Build scalable Agentic RAG pipelines and enterprise-grade LLM applications.
  • Implement LLM orchestration, tool calling, workflow automation, and intelligent agents.
  • Work with MCP (Model Context Protocol) to integrate AI agents with enterprise tools, data sources, and services.
  • Develop effective prompt engineering strategies, including structured prompting and reusable prompt frameworks.
  • Implement Prompt Injection Defense, hallucination mitigation, grounding, validation, and AI safety mechanisms.
  • Design and implement structured outputs using schemas and validation frameworks.
  • Work with leading LLM platforms/models including Claude and other enterprise LLMs.
  • Ensure AI solutions follow AI Safety, security, privacy, and responsible AI principles.
  • Build CI/CD pipelines and production deployment workflows using Docker, Kubernetes, and DevSecOps practices.
  • Develop and deploy AI workloads on GCP and integrate with enterprise cloud services.
  • Collaborate with engineering, security, data, and business teams to deliver enterprise AI solutions.
  • Ensure AI applications align with applicable regulatory and governance requirements, including EU AI Act and DORA.
  • Lead technical discussions, architecture decisions, code reviews, and mentoring of AI engineering teams.

Required Technical Skills

  • Python
  • LangGraph
  • Agentic RAG
  • Multi-Agent Systems
  • LLM Orchestration
  • MCP (Model Context Protocol)
  • Prompt Engineering
  • Prompt Injection Defense
  • Hallucination Mitigation
  • Structured Outputs
  • Claude / LLMs
  • Generative AI / Agentic AI
  • AI Safety & Responsible AI
  • CI/CD
  • Docker
  • Kubernetes
  • DevSecOps
  • GCP / Google Cloud
  • Enterprise AI architecture and deployment

AI Governance & Compliance

  • Understanding of EU AI Act requirements and AI risk management.
  • Knowledge of DORA (Digital Operational Resilience Act) and its relevance to technology/AI systems.
  • Experience implementing AI security, governance, auditability, monitoring, and compliance controls.

Preferred Skills

  • Experience building production-grade enterprise AI platforms.
  • Knowledge of LLM evaluation, observability, guardrails, and AI monitoring.
  • Experience with API development and microservices.
  • Strong understanding of cloud-native architecture and secure software development.
  • Experience leading AI engineering teams and working with enterprise stakeholders.

More Info

Key Skills

Enterprise AI architecture and deployment

Prompt Injection Defense

CI CD

LangGraph

Multi-Agent Systems

Structured Outputs

EU AI Act

Hallucination Mitigation

LLM Orchestration

DORA

Generative AI

AI Safety

MCP Model Context Protocol

Agentic AI

Claude LLMs

Agentic RAG

Responsible AI

Prompt Engineering

About Company

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