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Technology Architect

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Job Description

Project Role : Technology Architect

Project Role Description : Design and deliver technology architecture for a platform, product, or engagement. Define solutions to meet performance, capability, and scalability needs.

Must have skills : Python (Programming Language)

Good to have skills : CommerceTools Commerce Platform

Minimum 3 Year(s) Of Experience Is Required

Educational Qualification : 15 years full time education

Summary:

Design, build, and ship GenAI features end to end across web/backend stacks. You ll implement LLM powered experiences (chat, copilots, content automation), robust RAG pipelines, and API integrations using Python and modern front-end frameworks, deploying on AWS/Azure/GCP.

Roles & Responsibilities:

  • Implement GenAI features (chatbot flows, agent tools, content generation, summarization) with Python backends (FastAPI/Flask/Django) and React/Angular front ends.
  • Build RAG pipelines: ingestion, chunking, embeddings, vector search, retrieval orchestration, response templating.
  • Integrate cloud AI services: AWS Bedrock (Claude, Titan), Azure OpenAI (GPT 4o family), Google Vertex AI (Gemini) plus model endpoints from Hugging Face.
  • Develop data connectors to S3/Blob/GCS, Kendra/Azure AI Search/Vertex Search, relational/NoSQL stores.
  • Engineer prompt templates, tool use, guardrails, and evaluation harnesses (toxicity, hallucinations, latency, quality).
  • Implement observability & MLOps hooks (OpenTelemetry, logging, tracing, CI/CD), model/config versioning, blue/green deployments.
  • Write secure, testable code (unit/integration tests), perform code reviews, and contribute to reusable libraries/components.

Professional & Technical Skills:

  • Strong Python (async, typing), REST/GraphQL APIs, microservices JavaScript/TypeScript for UI.
  • LLMs & GenAI fundamentals: prompting, function/tool calling, structured outputs, evaluation.
  • RAG: embeddings (Titan, text embedding ada/EP), vector DBs (Kendra/AI Search/OpenSearch/FAISS), retrieval strategies (hybrid).
  • Cloud fluency:
  • AWS: Bedrock, Lambda, S3, API Gateway, Step Functions, DynamoDB, Kendra, OpenSearch.
  • Azure: OpenAI, Functions, Key Vault, Cosmos DB, Azure AI Search, App Service, AKS.
  • GCP: Vertex AI, Cloud Run, Cloud Functions, BigQuery, Firestore.
  • CI/CD (GitHub Actions/Azure DevOps), containers (Docker, Kubernetes), IaC (Terraform/CloudFormation/Bicep).
  • Security: secret management (Key Vault/Secrets Manager), data privacy, prompt injection defenses.
  • Experience with multi agent frameworks (LangGraph/LangChain), streaming (Server Sent Events/WebSockets).
  • Front end design systems, accessibility, and performance tuning.
  • Exposure to analytics/telemetry pipelines for model quality monitoring.

Additional Information:

  • Bachelor s/Master s in CS/Engineering (or equivalent).
  • Typically, 7–10 years total experience 2–4 years in applied GenAI/LLM solutions.
  • A 15 years full time education is required.




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About Company

Job ID: 152078545

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