Data & AI Solutions Architect
Quick Overview
Job Description
Data & AI Solutions Architect
Level: Senior (7-12 years) | Function: Data & AI | Work Model: Hybrid
Type: Individual Contributor / Player-Coach
We are seeking a Senior Data & AI Solutions Architect who can bridge business discovery, data analysis, solution architecture, data engineering, and hands-on AI/GenAI implementation.
The ideal candidate must be able to lead discovery workshops, translate ambiguous business needs into data and AI use cases, profile datasets, design end-to-end solutions, and build or prototype practical GenAI applications.
Key Responsibilities
- Lead stakeholder discovery workshops and requirements elicitation.
- Translate business problems into measurable data and AI use cases.
- Profile and analyze datasets using SQL and Python.
- Design end-to-end data and AI solutions, including C4-style architecture diagrams.
- Evaluate build-versus-buy options and technical trade-offs.
- Design and build ETL/ELT pipelines using modern orchestration and transformation tools.
- Develop and prototype GenAI solutions using LLMs, RAG, prompt engineering, embeddings, agents, and tool-use frameworks.
- Champion responsible AI, evaluation, guardrails, and human-in-the-loop practices.
- Lead initiatives from discovery through production and mentor junior team members.
Required Qualifications
- 7-12 years of experience in data analysis, data engineering, analytics consulting, or solution architecture.
- 2+ years of recent, hands-on AI/GenAI experience.
- Proven experience delivering real LLM-based applications; AI/GenAI must be demonstrated through project experience, not just resume keywords.
- Hands-on experience with RAG, prompt engineering, embeddings, and at least one agent/tool-use framework such as LangChain, LangGraph, Semantic Kernel, AutoGen, or Google ADK.
- Advanced SQL and strong Python skills.
- Experience with Power BI, Tableau, or Looker.
- Experience with ETL/ELT orchestration tools such as Airflow, Dagster, or ADF.
- Experience with dbt or an equivalent transformation framework.
- Experience with a modern data platform such as Snowflake, BigQuery, Databricks, Redshift, or Synapse.
- Experience with AWS, Azure, or Google Cloud Platform.
- Demonstrated experience producing end-to-end solution designs and leading business discovery.
- Experience delivering at least one data or AI initiative from discovery through production.
Preferred Qualifications
- Experience with MLOps/LLMOps tools such as MLflow, Weights & Biases, LangSmith, or Langfuse.
- Experience with vector databases such as Pinecone, pgvector, Weaviate, or OpenSearch.
- Experience in regulated industries.
- Data governance or Data Mesh experience.
- Consulting or client-facing experience.
Skills
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