AI Developer

UST

Hyderabad

On-site

INR 2,200,000 - 3,200,000

Full time

5 days ago
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Job summary

UST in Hyderabad seeks a seasoned AI/ML professional with 6+ years of experience in development, software engineering or testing. You will work with Copilot, Claude, OpenAI and other LLM platforms to build enterprise-grade AI solutions and shape multi-model AI ecosystems.

You will design, deploy and monitor AI systems with robust governance, AI guardrails, RAG pipelines, MCP servers, and token/ cost optimization, while collaborating across teams to deliver scalable AI experiences in production.

Qualifications

  • 6+ years of professional experience in AI/ML development, software engineering, or testing.
  • Hands-on experience with Copilot, Claude, OpenAI, or other LLM-based platforms.
  • Dedicated testing and QA experience within AI/ML systems.
  • Proven experience delivering production-grade AI applications.
  • Experience working with multi-model AI ecosystems across OpenAI, Anthropic, Microsoft, Google, Meta, and similar platforms.

Responsibilities

  • Build and maintain enterprise-grade AI tools leveraging LLMs, Copilots, and AI agent frameworks.
  • Implement AI Guardrails to ensure application safety, compliance, responsible AI usage, and security.
  • Design and optimize Context Compression strategies to reduce token consumption, improve performance, and control operational costs.
  • Develop and integrate RAG pipelines and MCP Server-based solutions to enable contextual and scalable AI experiences.
  • Deploy, monitor, and maintain productionized AI solutions with appropriate observability, governance, and feedback mechanisms.

Skills

AI/ML development
Software engineering
Testing
Production-grade AI
Multi-model AI ecosystems

Tools

LangChain
LlamaIndex
OpenAI APIs
Anthropic APIs
Azure OpenAI
Microsoft Copilot
Prompt Engineering
RAG
MCP Servers
AI Guardrails
Context Compression

Job description

  • 6+ years of professional experience in AI/ML development, software engineering, or testing.
  • Hands-on experience with Copilot, Claude, OpenAI, or other LLM-based platforms.
  • Dedicated testing and QA experience within AI/ML systems.
  • Experience working with multi-model AI ecosystems across OpenAI, Anthropic, Microsoft, Google, Meta, and similar platforms.
  • Hands-on experience in designing, developing, and deploying AI-powered tools and applications in enterprise environments.
  • Demonstrated experience implementing and managing productionized AI solutions, including monitoring, governance, scalability, and performance optimization.
  • Experience implementing RAG (Retrieval Augmented Generation) solutions and integrating with vector databases.
  • Exposure to MCP (Model Context Protocol) servers and AI agent frameworks.
  • LangChain
  • OpenAI APIs
  • Anthropic APIs
  • Prompt Engineering
  • RAG (Retrieval Augmented Generation)
  • AI Guardrails implementation and validation
  • Context Compression and Token Optimization techniques
Role Description
  • 6+ years of professional experience in AI/ML development, software engineering, or testing.
  • Hands-on experience with Copilot, Claude, OpenAI, or other LLM-based platforms.
  • Dedicated testing and QA experience within AI/ML systems.
  • Proven experience delivering production-grade AI applications.
  • Experience working with multi-model AI ecosystems across OpenAI, Anthropic, Microsoft, Google, Meta, and similar platforms.
  • Hands-on experience in designing, developing, and deploying AI-powered tools and applications in enterprise environments.
  • Demonstrated experience implementing and managing productionized AI solutions, including monitoring, governance, scalability, and performance optimization.
  • Experience implementing RAG (Retrieval Augmented Generation) solutions and integrating with vector databases.
  • Exposure to MCP (Model Context Protocol) servers and AI agent frameworks.
AI & Machine Learning Technologies
  • LangChain
  • LlamaIndex
  • OpenAI APIs
  • Anthropic APIs
  • Azure OpenAI
  • Microsoft Copilot
  • Prompt Engineering
  • RAG (Retrieval Augmented Generation)
  • MCP (Model Context Protocol) Servers
  • AI Guardrails implementation and validation
  • Context Compression and Token Optimization techniques
Key Responsibilities
AI Development & Implementation
  • Build and maintain enterprise-grade AI tools leveraging LLMs, Copilots, and AI agent frameworks.
  • Implement AI Guardrails to ensure application safety, compliance, responsible AI usage, and security.
  • Design and optimize Context Compression strategies to reduce token consumption, improve performance, and control operational costs.
  • Develop and integrate RAG pipelines and MCP Server-based solutions to enable contextual and scalable AI experiences.
  • Deploy, monitor, and maintain productionized AI solutions with appropriate observability, governance, and feedback mechanisms.
The Candidate Should Possess a Strong Understanding Of
  • Large Language Models (LLMs)
  • Generative AI solution architecture
  • Retrieval Augmented Generation (RAG)
  • Vector Databases
  • NLP/NLU concepts
  • AI Ethics and Responsible AI
  • Bias Detection and Mitigation
  • AI Security and Data Privacy
  • Regulatory Compliance Requirements
  • AI Guardrails, content filtering, prompt injection prevention, and responsible AI controls
  • Context Compression, token management, and cost optimization strategies
  • MCP (Model Context Protocol) architecture and AI agent integrations
  • Best practices for production deployment, monitoring, and governance of AI solutions
Required Technical Competencies
AI & LLM Expertise
  • Microsoft Copilot Suite
  • GitHub Copilot
  • Claude (Opus, Sonnet, Haiku)
  • OpenAI GPT Models
  • Prompt Engineering
  • Few-shot Learning Techniques
  • Model Selection & Evaluation
  • Hands-on experience building AI tools and enterprise AI applications
  • Design and implementation of AI Guardrails
  • Context Compression and Token Optimization techniques
  • RAG architecture design and implementation
  • MCP Server integration and configuration
  • Production deployment and lifecycle management of AI solutions
  • Experience implementing AI Guardrails and Responsible AI frameworks in enterprise environments.
  • Hands-on experience optimizing LLM applications for token efficiency, latency, and cost management.
  • Experience working with MCP servers, AI agents, and multi-agent architectures.
  • Experience deploying and supporting productionized AI solutions at scale.
  • Experience building custom AI copilots, assistants, and enterprise AI tools.
Skills
  • LangChain, LLMs, MLOps, Python, LlamaIndex, OpenAI, NoSQL, NLP, SQL, Prompt Engineering, Machine Learning, AI development, Guardrails, RAG
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