Experience
3 - 5 yrs
Job Location
Ahmedabad, India
Vacancy
1
Designation
Artificial Intelligence Architect
Job Type
ONSITE
Job Description
02 Key Responsibilities
- Engage directly with clients to understand business problems, operational bottlenecks, and automation opportunities
- Translate business requirements into detailed AI architecture blueprints covering model selection, infrastructure, data flow, and integration points
- Recommend cloud vs. on-premise vs. hybrid AI deployment based on client security posture, data sensitivity, and budget
- Present AI solution proposals to both technical and non-technical stakeholders with clarity
- Design and deploy AI automation workflows using n8n, Make, and Zapier integrated with LLM capabilities
- Integrate OpenAI, Anthropic Claude, Google Gemini, and other LLM APIs into client systems and internal products
- Set up and configure local AI deployments using Ollama, LM Studio, or similar frameworks on client infrastructure
- Build and maintain RAG (Retrieval-Augmented Generation) pipelines with vector databases (Pinecone, Weaviate, Qdrant, ChromaDB)
- Develop AI Agents and AI Assistants tailored to specific business use cases customer support, sales enablement, operations, inventory
- Build and deploy AI chatbots integrated into websites, WhatsApp, Shopify storefronts, and internal tools
- Configure and manage MCP (Model Context Protocol) servers for context-aware AI deployments
- Implement AI-powered features within Shopify ecosystems smart recommendations, AI search, automated customer interactions
- Integrate AI workflows into Zoho Flow, Zoho CRM, and other business platforms used by SME and enterprise clients
- Build AI-assisted ERP/SAP integration layers for data transformation and decision support
- Set up GPU/AI server infrastructure (NVIDIA-based or cloud GPU instances) for local model deployment
- Containerize AI services using Docker; manage deployment in basic server environments
- Enforce AI security best practices data privacy, prompt injection defense, model access control, audit logging
- Evaluate and implement on-premise AI deployments for clients with data residency or compliance requirements
- Stay current on fast-moving AI tooling, models, and frameworks bring new ideas into the practice proactively
- Document architectures, deployment playbooks, and integration guides for internal knowledge sharing
- Mentor junior team members on AI implementation practices
- LLM Integration: Hands-on experience integrating OpenAI GPT, Anthropic Claude, or Google Gemini APIs into production systems
- Local AI Deployment: Practical experience with Ollama, LM Studio, or equivalent for running open-weight models locally
- RAG Vector Databases: Ability to build end-to-end RAG pipelines; working knowledge of at least one vector DB
- AI Agents Assistants: Built at least one functional AI agent or assistant tool-using, multi-step, or autonomous
- Automation Platforms: Hands-on experience with n8n, Make (Integromat), or Zapier for workflow automation
- API Integrations: Comfortable working with REST APIs, webhooks, and third-party integration patterns
- Prompt Engineering: Practical understanding of system prompts, few-shot prompting, chain-of-thought, and output structuring
- Programming: Working knowledge of Python or Node.js enough to build integrations, scripts, and lightweight services
- Docker Deployment: Ability to containerize AI services and deploy to Linux-based server environments
- AI Security Basics: Awareness of data privacy in AI systems, prompt injection risks, and secure API key management
- Experience with MCP (Model Context Protocol) server setup and configuration
- Shopify app development or AI integrations within the Shopify ecosystem
- Zoho Flow / Zoho One automation experience
- Familiarity with ERP/SAP data structures and integration patterns
- Knowledge of GPU infrastructure NVIDIA CUDA, cloud GPU provisioning (AWS, GCP, Azure)
- Experience with LangChain, LlamaIndex, or similar orchestration frameworks
- Working knowledge of embedding models and semantic search
- WhatsApp Business API integrations
- Basic understanding of fine-tuning or model customization workflows
- 3 to 5 years of total professional experience in technology roles
- Minimum 1.5 to 2 years of direct, hands-on AI/ML implementation experience (not just exposure)
- At least 2 to 3 end-to-end AI projects delivered from problem definition to deployment
- Prior experience in a digital agency, product company, or consulting environment is strongly preferred
- Client-facing experience or technical pre-sales exposure is a significant plus
- Experience in e-commerce, retail, or B2B SaaS verticals preferred
- B.E. / B.Tech in Computer Science, IT, Electronics, or related engineering discipline Preferred
- BCA / MCA / B.Sc. (Computer Science) Preferred
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