AI/ML Technical Lead

Hitachi Solutions

Hyderabad, Chennai District, Bengaluru

Hybrid

INR 3,500,000 - 5,200,000

Full time

10 days ago
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Job summary

Hitachi Solutions in Hyderabad seeks an AI/Automation Architecture Lead to own end-to-end design of an AI-assisted migration platform. You will drive AI/ML strategy, lead a 3–8 person team, and ensure secure, scalable integration with Azure services and external APIs.

The role demands prompt engineering, schema-constrained output, and governance over fidelity scoring and risk management.

Qualifications

  • Experience architecting AI-in-the-loop systems and bounding LLM output.
  • Strong architecture leadership with 3–8 developers mentoring.
  • Proven ability to design multi-stage AI architectures and integrations.
  • Hands-on coding in Node.js/TypeScript or Python for parsing workflows.
  • Familiarity with Azure cloud services and secure authentication flows.

Responsibilities

  • Own end-to-end AI-assisted migration platform architecture and delivery.
  • Lead feasibility studies, scoping, and prioritised backlogs with clients.
  • Mentor an AI/automation team across engineering and prompt-engineering.
  • Develop AI components: prompt schemes, LLM integration, RAG/classification.
  • Ensure quality via automated tests and eval harnesses.

Skills

AI Development
Lead/Mentor
Architecture Design
Prompt Engineering
LLM Integration
Azure Cloud
REST/API Integration
Testing & Validation
MCP Server
Security Review

Tools

Node.js
TypeScript
Python
Nintex NWF
Power Automate
Azure

Job description

Own the end-to-end architecture of the AI-assisted migration platform agent/skill/harness design, AI-in-the-loop bounding of LLM output, and Azure cloud architecture (App Services, Functions, Key Vault, Azure AD).

Drive AI/ML strategy: build-vs-buy and model selection calls, fine-tuning vs. prompting and cost/latency trade-offs, and definition of fidelity scoring and gap-analysis evaluation metrics.

Lead delivery and stakeholder management — scope feasibility studies vs. production builds, define data requirements with customer IT teams, and triage client edge-case escalations into a prioritised backlog.

Lead and mentor a 3–8 person AI/automation engineering team across classical and prompt-engineering disciplines, while owning migration risk, rollback strategy, and security/credential review.

Develop AI/LLM components — prompt engineering with schema-constrained output, LLM API integration (Anthropic/OpenAI/Azure OpenAI), and RAG or classification pipelines that map legacy actions to modern equivalents.

Integrate the solution with the surrounding ecosystem via REST APIs, webhooks, Azure CLI/Azure AD authentication flows, and MCP server endpoints.

Own quality through automated workflow validation tests and eval harnesses that score model output fidelity, and document unsupported or manually reviewed conversion cases.

Build and maintain the parsing/conversion engine (Node.js/TypeScript or Python) that reads XML/JSON-based Nintex workflow definitions and generates equivalent Power Automate flow logic.

AI Developing Skill:
Core Programming & Parsing
  1. Node.js / TypeScript or Python (framework matching the Agent's stack)
  2. XML/JSON parsing experience (Nintex NWF is XML-based)
  3. Experience building parsers, ASTs, or rule engines
  4. Regex / expression-language conversion experience
AI / LLM Engineering
  1. Prompt engineering / structured (schema-constrained) output generation
  2. LLM API integration (Anthropic, OpenAI, Azure OpenAI)
  3. RAG or classification pipeline experience
  4. Coding Agent experience via Claude / Github copilot
  5. Eval-harness / model output scoring experience
Integration / Ecosystem
  1. MCP (Model Context Protocol) server development
  2. Azure CLI / Azure AD authentication flows
  3. REST API integration & webhook handling
Testing & Quality
  1. Test automation for workflow/flow validation
  2. Application level testing best practices
Nice to Have (General)
  1. SharePoint / M365 admin experience
AI Lead Skill:
All Developer-level skills (Full Developer Skills Matrix (see 'Developer Skills' tab))
Architecture
  1. Designs multi-stage for AI Coding Architectures (Agents, Skills, Harness Engineering)
  2. Experience architecting AI-in-the-loop systems (bounding LLM output, hallucination/fidelity risk)
  3. Azure cloud architecture (App Services, Functions, Key Vault, Azure AD)
AI/ML Strategy
  1. Build-vs-buy calls on model selection, fine-tuning vs. prompting, cost/latency tradeoffs
  2. Defines evaluation metrics for a generative system (fidelity scoring, gap analysis frameworks)
Delivery & Stakeholder Management
  1. Has scoped feasibility studies vs. production builds
  2. Client-facing experience; triages edge-case escalations into a backlog
  3. Defines data requirements with customer IT teams (logs, connector inventories, run history)
Risk & Compliance
  1. Migration risk management (unsupported actions, rollback strategy)
  2. Security review experience (auth handling, credential migration, connection ownership)
Leadership
  1. Has led a small-to-mid AI/automation engineering team (3–8 devs)
  2. Mentors across both classical engineering and AI/prompt-engineering skill sets
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