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Recrosoft Technologies Private Limited
Delhi, India
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Experience: 10+ Years Total | 3–4+ Years in Hands-On GenAI & Agentic AI
Education: B.Tech / M.Tech / MS / PhD in Computer Science or related technical field
About the Role: We are seeking a senior AI Solution Architect who is passionate about remaining 100% hands-on with technology. This is a pure Individual Contributor (IC) position—there is zero people management, team oversight, or administrative overhead.In this role, you will sit directly across the table from enterprise clients to architect production-grade GenAI systems, optimise LLM pipelines, scale compute infrastructure, and justify complex technical trade-offs in real time. If you thrive on rolling up your sleeves, writing code, and solving real-world AI execution bottlenecks, this role is built for you.
Key Responsibilities
Enterprise Client Architecture: Interface directly with client technical leadership to translate business requirements into scalable, secure AI architectures.
GenAI & Agentic System Design: Architect and build end-to-end multi-agent workflows, LLM orchestration layers, and RAG pipelines using frameworks like LangChain and LangGraph.
Real-Time Technical Execution: Manage hands-on infrastructure scenarios, including GPU scaling, embedding model selection, vector indexing, fine-tuning evaluations, and model unlearning.
API & Platform Integration: Define microservices patterns, serverless architectures, and REST/GraphQL/WebSocket endpoints to integrate AI services into enterprise software platforms.
Security & Responsible AI: Implement robust data privacy, zero-trust access controls (IAM/RBAC), encryption standards, and AI governance guardrails across multi-cloud environments.
What We Are Looking For
Total Experience: 10+ years of solid software engineering and distributed systems background.
GenAI Expertise: 3–4+ years of direct, hands-on experience building production GenAI applications, vector search architectures, and fine-tuning pipelines.
Frameworks & Tools: Deep implementation knowledge of LangChain, LangGraph, Hugging Face Transformers, and agentic design patterns.
Data & Vector Stores: Practical experience with vector databases (Pinecone, Weaviate, pgvector, Qdrant) alongside relational and NoSQL databases.
Cloud Architecture: Hands-on deployment experience across AWS (Bedrock, SageMaker), Azure (OpenAI Service, AKS), or GCP (Vertex AI). Cloud architect certifications are a strong plus
Any Graduate
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