Data Architect

KANINI

Chennai District

On-site

INR 2,500,000 - 3,500,000

Full time

14 days+

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Job summary

A leading technology solutions provider is seeking an AI Architect / AI Lead responsible for defining the AI strategy, designing scalable AI/ML architectures, and implementing AI solutions across the organization. The ideal candidate will have 9-15+ years of experience, strong understanding of AI/ML technologies, and leadership experience in managing cross-functional teams. This role requires excellent communication skills and the ability to translate business objectives into measurable AI outcomes. A relevant degree is preferred.

Qualifications

  • 9–15+ years of overall experience, with 4+ years in AI/ML architecture or leadership.
  • Strong understanding of machine learning, deep learning, NLP, LLMs, RAG, transformers.
  • Experience designing enterprise-grade AI systems and microservices architectures.

Responsibilities

  • Define the AI strategy and design scalable AI/ML architectures.
  • Lead AI initiatives across various business units.
  • Evaluate new AI technologies and frameworks.
  • Translate business challenges into measurable AI use cases.
  • Ensure compliance with data protection laws.

Skills

Machine learning
Deep learning
NLP
Large Language Models (LLMs)
Cloud platforms
Python
SQL
Stakeholder management
Communication skills

Education

Master's or bachelor’s degree in Computer Science, AI, Data Science

Tools

Azure AI
AWS Sagemaker
Google Vertex AI
TensorFlow
PyTorch

Job description

The AI Architect / AI Lead will be responsible for defining the AI strategy, designing scalable AI/ML architectures, and leading end‑to‑end implementation of AI solutions across the organization. This role involves deep technical expertise, strategic leadership, and collaboration with cross‑functional teams to drive the adoption of AI responsibly and effectively.

Key Responsibilities
  • Develop and maintain the enterprise AI roadmap aligned with business objectives.
  • Evaluate new AI technologies, frameworks, and vendors to support innovation.
  • Define governance frameworks for responsible AI, privacy, security, and ethics.
  • Lead AI/ML initiatives across multiple business units.
2. Architecture & Technical Design
  • Define MLOps frameworks for continuous training, deployment, monitoring, and lifecycle management.
  • Architect data pipelines, vector databases, LLM orchestration, and retrieval‑augmented generation (RAG) systems.
  • Select appropriate models (LLMs, CV, NLP, Generative AI, predictive analytics) based on business needs.
3. Solution Development
  • Provide technical leadership for building and deploying AI applications.
  • Work with data scientists, ML engineers, and software teams to deliver production‑grade models.
  • Optimize AI workloads for cost, performance, and scalability.
  • Oversee integration of AI into products, platforms, and enterprise systems.
4. Stakeholder Collaboration
  • Translate business challenges into AI use cases with measurable outcomes.
  • Work with product owners, data teams, and business leaders to prioritize initiatives.
  • Present AI strategy and technical recommendations to executives and leadership teams.
5. Risk, Compliance & Responsible AI
  • Ensure compliance with data protection laws (GDPR, HIPAA, DPDP, etc.).
  • Create explainability and transparency frameworks for AI decisions.
  • Implement controls to prevent bias, model drift, and data misuse.
Required Skills & Experience
Technical Skills
  • 9–15+ years of overall experience, with 4+ years in AI/ML architecture or leadership roles.
  • Strong understanding of:
    • Machine learning, deep learning, NLP, LLMs, RAG, transformers.
  • Cloud platforms: Azure AI, AWS Sagemaker, or Google Vertex AI.
  • Programming: Python, SQL; familiarity with TensorFlow/PyTorch.
  • Experience designing enterprise‑grade AI systems and microservices architectures.
Soft Skills
  • Strong communication and stakeholder‑management skills.
  • Ability to balance technical depth with strategic thinking.
  • Leadership experience with cross‑functional teams.
Preferred Qualifications
  • Master’s or bachelor’s degree in Computer Science, AI, Data Science, or related fields.
  • Certifications in cloud (Azure AI Engineer, AWS ML Specialty, etc.).
  • Experience implementing generative AI and LLM solutions in production.
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