AI Lead

iProgrammer Solutions

Pune District

On-site

INR 3,000,000 - 6,000,000

Full time

2 days ago
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Job summary

iProgrammer Solutions in Pune, Maharashtra is seeking an accomplished AI Lead to drive our AI practice end to end from client conversations and use-case discovery through architecture, delivery, and team leadership. You will be the go-to expert for all things AI/ML: classical machine learning, deep learning, Generative AI, and Agentic AI systems.

You will lead end-to-end delivery of AI initiatives, architect solutions across the full AI/ML spectrum, build enterprise-grade AI applications with

Qualifications

  • 5-7 years of software engineering, ML engineering, or data science experience.
  • Experience delivering enterprise AI initiatives from discovery through production deployment.
  • Proven ability to translate ambiguous business requirements into technical solutions and delivery plans.
  • Executive-level communication and client presentation skills.
  • Experience preparing solution proposals, architecture documents, and client presentations.

Responsibilities

  • Lead discussions with clients to understand strategic business challenges and transformation goals.
  • Identify and prioritize AI use cases with clear business value and ROI.
  • Create AI solution proposals, technical recommendations, and roadmaps.
  • Own end-to-end delivery of AI initiatives from discovery to production support.
  • Architect AI solutions across predictive modeling, NLP, CV, and Generative AI.
  • Build and govern RAG pipelines and agentic AI architectures with secure deployment.

Skills

Python
TypeScript/JS
SQL
Leadership
Client Engagement
AI/ML Architecture
MLOps

Tools

LangGraph
LangChain
LlamaIndex
OpenAI SDK
Anthropic SDK
Google GenAI SDK
Semantic Kernel
AutoGen
CrewAI

Job description

Role Summary

We are seeking an accomplished AI Lead to drive our AI practice end to end from client conversations and use-case discovery through architecture, delivery, and team leadership. You will be the go-to expert for all things AI/ML: classical machine learning, deep learning, Generative AI, and Agentic AI systems.

Key Responsibilities
Client Engagement & Use-Case Discovery
  • Lead discussions with clients to understand strategic business challenges, operational bottlenecks, and transformation goals.
  • Identify and prioritize potential AI use cases across existing engagements and new requirements, with clear articulation of business value and ROI.
  • Facilitate AI discovery workshops and translate ambiguous business problems into well-defined AI solution opportunities.
  • Create solution proposals, technical recommendations, implementation roadmaps, and effort estimates.
  • Present AI capabilities, trade-offs, and business value to senior and executive stakeholders.
  • Support pre-sales engagements through solution demonstrations, technical proposals, and client presentations.
AI/ML Solution Architecture & Delivery
  • Own end-to-end delivery of AI initiatives from discovery and design through development, deployment, and production support.
  • Architect solutions across the full AI/ML spectrum: predictive modeling, NLP, computer vision, recommendation systems, Generative AI, and agentic automation selecting the right approach for each problem.
  • Design and develop enterprise-grade AI applications using Large Language Models (LLMs), Agentic AI frameworks, and modern AI engineering practices.
  • Architect autonomous and multi-agent systems capable of reasoning, planning, orchestration, and tool execution.
  • Build Retrieval-Augmented Generation (RAG) pipelines using enterprise knowledge sources.
  • Integrate AI solutions with enterprise systems, APIs, databases, and cloud platforms.
  • Optimize solutions for scalability, latency, cost, security, and reliability.
Proof of Concept (PoC) & Innovation
  • Rapidly prototype AI solutions to validate technical feasibility and business impact.
  • Define evaluation criteria and success metrics for AI pilots.
  • Conduct benchmarking of AI/ML models, frameworks, and orchestration strategies.
  • Evaluate emerging AI technologies and translate them into practical enterprise capabilities.
  • Present findings, recommendations, and implementation approaches to clients.
Team Leadership & Capability Building
  • Lead, mentor, and grow a team of AI/ML engineers; own delivery quality and technical direction.
  • Conduct design and code reviews; establish engineering standards and best practices across the team.
  • Drive hiring, onboarding, and capability development for the AI practice.
  • Define reusable AI components, accelerators, and internal frameworks that speed up delivery.
  • Collaborate with Product Managers, Business Analysts, Engineering teams, UX designers, and client stakeholders.
AI Architecture & Governance
  • Design modular AI architectures following enterprise security, governance, and compliance standards.
  • Establish guardrails for responsible AI, prompt engineering, evaluation, and model governance.
  • Define model lifecycle management practices versioning, monitoring, drift detection, and retraining.
  • Contribute to AI engineering standards and architectural decision-making.
Required Technical Expertise
Programming
  • Python (expert level)
  • TypeScript / JavaScript
  • SQL
Machine Learning & Data Science
  • Supervised and unsupervised learning, ensemble methods, feature engineering
  • Model evaluation, validation, and hyperparameter tuning
  • Deep learning (PyTorch, TensorFlow/Keras)
  • NLP, computer vision, time-series forecasting, and recommendation systems
  • Statistical analysis and experimentation (A/B testing)
  • Data processing at scale (Pandas, NumPy, scikit-learn, Spark a plus)
Generative & Agentic AI
  • Large Language Models - selection, fine-tuning, and optimization
  • Agentic AI and Multi-Agent Systems
  • Retrieval-Augmented Generation (RAG)
  • Prompt Engineering and context management
  • AI Evaluation Frameworks and Model Observability
  • Semantic Search and Embeddings
AI Frameworks & SDKs
  • LangGraph, LangChain, LlamaIndex
  • AutoGen, CrewAI, Semantic Kernel
  • OpenAI SDK, Anthropic SDK, Google GenAI SDK
Cloud Platforms

Experience with one or more:

  • AWS (Bedrock, SageMaker)
  • Azure (AI Foundry / Azure OpenAI, Azure ML)
  • Google Cloud (Vertex AI)
Backend & Integration
  • FastAPI, REST APIs
  • Event-driven architectures and microservices
  • Enterprise system integrations
Data Platforms
  • PostgreSQL, MongoDB
  • Vector databases (Pinecone, Weaviate, Milvus, ChromaDB, FAISS)
DevOps & MLOps
  • Docker, Kubernetes, Git, CI/CD
  • ML pipelines and experiment tracking (MLflow or equivalent)
  • Model deployment, monitoring, and drift management
  • Infrastructure as Code (preferred)
Leadership & Consulting Skills
  • Proven ability to lead client discussions and identify AI opportunities with measurable business outcomes.
  • Experience translating ambiguous business requirements into technical solutions and delivery plans.
  • Executive-level communication and presentation skills.
  • Experience preparing solution proposals, architecture documents, and client presentations.
  • Ability to balance technical feasibility, business value, implementation complexity, and ROI.
  • Track record of mentoring engineers and building high-performing technical teams.
Preferred Experience
  • 5-7 years of software engineering, ML engineering, or data science experience, including hands-on AI/ML delivery.
  • Experience leading enterprise AI initiatives from discovery through production deployment.
  • Experience working directly with enterprise clients or in consulting engagements.
  • Hands-on experience designing autonomous AI agents and enterprise automation solutions.
  • Familiarity with AI governance, responsible AI, and enterprise security principles.
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