Lead AI Engineer (Startup/ Agentic AI/ Energy & Utility)
PeopleGene
- Location
- Pune District, Maharashtra, India
- Job type
- Full-time
Required skills
- LangChain
- Python
- data science
- deep learning
- point cloud processing
- prototypes
About the role
Website:
peoplegene.in
Job details:
Responsibilities:
- Design, train, fine-tune, and evaluate Generative AI models (LLMs, multimodal models) for enterprise use cases.
- Develop and optimize prompt engineering, RAG pipelines, agents, and fine-tuning workflows.
- Design, develop, and optimize a multi‑agent agentic framework that enables autonomous, domain‑aware collaboration across specialized agents.
- Work with open-source and commercial LLMs (OpenAI, Anthropic, LLaMA, Mistral, etc.).
- Implement guardrails, safety mechanisms, and hallucination mitigation techniques.
- Partner with business, consulting, and product teams to identify, evaluate, and prioritize GenAI use cases.
- Translate business problems into clear GenAI solution architectures and success metrics.
- Create solution blueprints, prototypes, and POCs to demonstrate business value.
- Design and manage data pipelines for AI training, fine-tuning, and inference.
- Build scalable, secure, and cost-efficient GenAI systems for production environments.
- Collaborate with engineering teams on deployment, monitoring, and retraining strategies.
- Monitor model performance, latency, cost, and drift in production.
- Ensure responsible, ethical, and compliant use of Generative AI.
- Implement explainability, auditability, and traceability mechanisms where required.
- Address data privacy, IP protection, and regulatory constraints (e.g., GDPR).
- Define and enforce AI best practices, standards, and usage guidelines.
Good to have:
- Prior 5–9 years of experience in data science, ML engineering, or AI development, with 2+ years focused on Generative AI.
- Strong hands-on experience with LLMs, transformers, embeddings, and vector databases.
- Proficiency in Python and GenAI frameworks (LangChain, LlamaIndex, Haystack, Hugging Face).
- Experience with fine-tuning techniques (LoRA, PEFT, instruction tuning).
- Experience designing multi‑agent systems, including orchestration, coordination, and distributed reasoning.
- Familiarity with MLOps tools, CI/CD pipelines, and model monitoring.
- Familiarity with 3D deep learning and large scale point cloud processing is a plus.
- Experience working in fast paced startup environment (preferred).
- Bachelor’s or Master’s degree in Computer Science, Data Science, AI, or a related field.
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