AI Data Enablement Engineer

Posted Yesterday
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Barcelona, Cataluña, ESP
In-Office
Senior level
Artificial Intelligence • Information Technology
The Role
Design and operate AI-ready data products, semantic layers, governed datasets, and natural-language analytics experiences on Snowflake or Databricks. Build ETL/ELT pipelines using dbt, Airflow, Snowpark, and PySpark; deploy Cortex or Genie capabilities; develop RAG and conversational analytics applications; and implement governance, security, lineage, auditability, and performance optimization. Partner with Finance stakeholders to define trusted KPIs, hierarchies, business glossaries, and semantic models in a regulated environment.
Summary Generated by Built In

Our Client's Digital Finance IT is building an AI-enablement layer on top of our enterprise data platform to enable business users across Finance to interact with governed data in natural language. We're hiring a Data Enablement Engineer to design, build, and operate the trusted datasets, semantic models, and embedded AI experiences that make this possible.

This is a data platform engineering role, not a data science or model-building role. You will spend your time engineering the data foundation that makes AI reliable — semantic layers, governed data products, and embedded natural-language analytics — not training models.

What You'll Do

  • Design and build AI-ready data products on Snowflake and/or Databricks — trusted datasets with well-defined business semantics, KPIs, hierarchies, and business glossary alignment
  • Implement semantic layers and governed datasets that support both traditional BI consumption and natural-language querying by business users
  • Deploy and operate Snowflake Cortex capabilities (Cortex Analyst, Cortex Search, Cortex Agents, Cortex LLM Functions) and/or Databricks Genie spaces with Unity Catalog, tuning them for accuracy, adoption, and business relevance
  • Build RAG pipelines and conversational analytics applications grounded in governed enterprise data — including Streamlit or Databricks Apps that let business users query data without writing SQL
  • Engineer robust ETL/ELT pipelines (dbt, Airflow, Snowpark, PySpark) that produce and maintain the trusted data these AI experiences depend on
  • Implement data governance — RBAC, row/column-level security, masking, lineage, auditability, catalog and metadata management — in a regulated pharma environment
  • Optimize cost and performance on both the data platform side (warehouse sizing, cluster tuning, query optimization) and the AI side (token usage, caching, model routing)
  • Partner with Finance business stakeholders to translate domain requirements into semantic models and governed data products they can trust

Requirements

Must-Have Experience

  • 5+ years hands-on data engineering on cloud data platforms — Snowflake and/or Databricks demonstrated in real project delivery, not skill-list-only
  • Direct hands-on experience with either Snowflake Cortex or Databricks Genie — you have built, configured, and tuned these in production or advanced pilots, with specific reference to the flavors used (Cortex Analyst / Search / Agents / LLM Functions, or Genie spaces with semantic models)
  • Semantic layer / trusted data product delivery — you have built governed datasets that business users can rely on, with KPI definitions, hierarchies, and business glossary alignment
  • dbt, PySpark, Snowpark, SQL, Python — strong across the modern data stack
  • Orchestration with Airflow, Databricks Workflows, or equivalent
  • Data governance in regulated environments — RBAC, RLS, masking, lineage, auditability
  • Experience integrating structured and unstructured data (PDFs, SharePoint/Teams content, enterprise knowledge sources) into AI-enablement workflows

Nice to Have

  • Pharma, life sciences, or regulated financial services domain experience
  • Veeva CRM, IQVIA, SAP, or clinical data source integration
  • Streamlit or Databricks Apps for business-facing analytics
  • SnowPro Advanced or Databricks Data Engineer Professional certification
  • LangChain, LlamaIndex, or equivalent RAG frameworks
  • Cost optimization on both compute (warehouse/cluster) and LLM (tokens/caching/routing) dimensions

What We're NOT Looking For

  • Data Scientists — this role is not model training, fine-tuning, LoRA/RLHF, or ML research
  • Pure Data Engineers who list Cortex or Genie as a skill but haven't shipped it in production
  • AI/GenAI engineers whose center of gravity is LangChain agents or RAG-over-documents, without a strong governed data platform foundation
  • Computer vision, NLP model builders, or multi-agent orchestration specialists — wrong shape for this role

Skills Required

  • 5+ years of hands-on data engineering experience on cloud data platforms
  • Production or advanced pilot experience with Snowflake Cortex or Databricks Genie
  • Experience delivering semantic layers and governed trusted data products
  • Strong experience with dbt, PySpark, Snowpark, SQL, and Python
  • Experience with Airflow, Databricks Workflows, or equivalent orchestration tools
  • Data governance experience in regulated environments, including RBAC, row-level security, masking, lineage, and auditability
  • Experience integrating structured and unstructured data into AI-enablement workflows
  • Pharma, life sciences, or regulated financial services experience
  • Experience integrating Veeva CRM, IQVIA, SAP, or clinical data sources
  • Experience with Streamlit or Databricks Apps
  • SnowPro Advanced or Databricks Data Engineer Professional certification
  • Experience with LangChain, LlamaIndex, or equivalent RAG frameworks
  • Cost optimization across data-platform compute and LLM usage
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The Company
11 Employees

What We Do

Xenon7 delivers specialized AI operations, AI products and services. Our innovation practice helps you separate initiatives warranting business investment from hype. We operate free from the bloat, weight and pyramidal structure of legacy consulting firms. Xenon7 enables our clients to make better human and technology decisions, and ethically achieve more with less

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