Storage AI Architect (Bengaluru)

Storage AI Architect (Bengaluru)

18 Sep
|
Macrohire
|
Bengaluru

18 Sep

Macrohire

Bengaluru

Excellent opportunity for AI/LLM Architect or Principal AI/ML Engineer who has built sophisticated GenAI/LLM and Agentic AI systems end-to-end and can translate advanced AI capabilities into scalable, secure and production-ready enterprise storage/infrastructure products .

Designation- Storage AI Architect

Exp- 10+ yrs

Location- Bangalore (Hybrid)

Key Responsibilities

- Architect and develop enterprise-grade Generative AI, LLM and Agentic AI platforms/products , including LLM modules, inference pipelines, model-serving and AI orchestration frameworks.
- Own the LLM lifecycle – model selection, data preparation, fine-tuning, evaluation, deployment, monitoring and performance/cost optimization.
- Design and implement advanced RAG architectures , including data ingestion, embeddings, vector databases, hybrid search, reranking, context engineering, GraphRAG and Agentic RAG.
- Build Agentic AI and multi-agent systems with planning, reasoning, memory, tool/function calling, agent-to-agent communication, MCP integrations and human-in-the-loop workflows.
- Develop intelligent AI agents for storage management, monitoring, troubleshooting, capacity planning, anomaly detection, predictive analytics, RCA and infrastructure automation .
- Apply AI/ML, Deep Learning, NLP and Transformer-based architectures to complex storage, cloud and infrastructure problems.
- Design LLMOps/MLOps/GenAIOps capabilities for model deployment, evaluation, observability, governance and continuous improvement.
- Optimize AI systems for latency, throughput, scalability, GPU utilization, inference performance, token consumption and infrastructure cost .




- Design secure AI architectures addressing prompt injection, data leakage, agent authorization, tool security, AI supply-chain risks and Responsible AI .
- Architect scalable AI platforms across AWS/Azure/GCP and hybrid cloud , leveraging Kubernetes, containers, microservices and distributed systems.
- Integrate AI solutions with storage platforms, APIs, telemetry, logs, metrics, observability and enterprise data sources .
- Drive AI initiatives from research/PoC → productization → enterprise-scale production , collaborating with Product, R&D;, Engineering and Architecture teams.

Mandatory Skills
- 10+ years of overall technology experience with solid experience in AI/ML, architecture and product engineering .
- 8+ years of hands-on AI/ML experience with significant GenAI/LLM development experience.
- Proven experience building LLM/GenAI platforms or products , beyond simply consuming AI APIs.
- Strong expertise in LLMs, Transformers, embeddings, RAG, Agentic AI and multi-agent systems .
- Hands-on experience with LLM modules, inference/model serving, fine-tuning, LoRA/PEFT, quantization and model optimization .
- Strong programming skills in Python.
- Hands-on experience with PyTorch/TensorFlow, Hugging Face, LangChain/LangGraph or equivalent frameworks .
- Experience with vector databases, semantic/hybrid search, knowledge graphs and GraphRAG .
- Strong understanding of LLMOps/MLOps/GenAIOps, AI evaluation, observability and governance .
- Strong experience with cloud, Kubernetes, distributed systems, microservices and scalable product architecture .
- Experience in storage, cloud infrastructure, distributed storage, telemetry or observability is highly preferred.

📌 Storage AI Architect (Bengaluru)
🏢 Macrohire
📍 Bengaluru

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