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GenAI Consultant

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  • Posted 9 hours ago
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Job Description

Step into a high-impact role where you'll shape how Generative AI systems are envisioned, validated, trusted, and scaled in real-world enterprise environments. As a senior technology consultant and architect, you will partner with business, product, and engineering stakeholders to run discovery workshops, define success metrics, and create solution roadmaps for high-value GenAI and ML use cases. You'll blend hands-on technical depth with architecture leadership—guiding teams from experimentation to production-grade systems—while designing robust testing strategies for GenAI solutions covering quality, safety, reliability, and performance.

Responsibilities

  • Implement Generative AI based solutions using Infosys and Industry standard tools and platforms
  • Implement prompt engineering techniques to evaluate model behavior under various input conditions and refining prompts for better accuracy and desired results.
  • Architect end-to-end Generative AI systems, including data pipelines, model selection, orchestration, evaluation, and deployment patterns using Infosys and industry-standard tools and platforms.
  • Design and implement ML/AI solutions using Python (or other relevant Data Science/AI languages), applying strong software engineering practices for maintainability, performance, and reliability.
  • Build MCP and agentic-based solutions using appropriate frameworks, enabling tool/function calling, workflow orchestration, and multi-step reasoning patterns aligned to business needs.
  • Test and validate GenAI applications using relevant tools and frameworks; capture, analyze, and report standard and custom quality metrics (e.g., relevance, groundedness, toxicity, latency, cost) and drive continuous improvement.
  • Explore and evaluate new technologies, tools, and testing methodologies to improve development processes and solution quality; stay up-to-date with advancements in Generative AI and evaluation practices.

Technical requirement (Optional)

  • Hands-on experience with LLM application patterns such as RAG, tool/function calling, prompt engineering, and automated evaluation frameworks.
  • Strong MLOps/LLMOps expertise: experiment tracking, model registry, CI/CD, observability, drift detection, and incident response for AI services.
  • Experience with data engineering concepts (feature stores, batch/stream processing) to support ML and GenAI workloads.
  • Proven ability to lead architecture governance, create reference architectures, and drive adoption across teams and portfolios.

Good to have skills

Generative AI, Automation, Devops, Python, agentic AI, Agile

Location: Pan India

Notice period: 0-60 days

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About Company

Job ID: 152465851

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Bengaluru, India

Skills:

stream processing Incident ResponsePythonAWSGcpMLopsTesting MethodologiesAzureautomated evaluation frameworksCI CDCloud AI solutionsagentic-based solutionsdata engineering conceptsmodel registryData Science AI languagesobservabilityfeature storesRAG tool function callingexperiment trackingLLMOpsworkflow orchestrationprompt engineeringLLM application patternsMCPdrift detection

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