Create and query Databricks Genie Spaces - natural language interfaces for SQL-based data exploration.
Scanned 9/6/2026
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<!-- AUTO-GENERATED by export-skills.py — DO NOT EDIT -->
---
name: databricks-genie
---
# Databricks Genie
Create and query Databricks Genie Spaces - natural language interfaces for SQL-based data
exploration.
## Overview
Genie Spaces allow users to ask natural language questions about structured data in Unity Catalog.
The system translates questions into SQL queries, executes them on a SQL warehouse, and presents
results conversationally.
## When to Use This Skill
Use this skill when:
- Creating a new Genie Space for data exploration
- Adding sample questions to guide users
- Connecting Unity Catalog tables to a conversational interface
- Asking questions to a Genie Space programmatically (Conversation API)
## MCP Tools
### Space Management
| Tool | Purpose |
| ------------------------ | --------------------------------------- |
| `list_genie` | List all Genie Spaces accessible to you |
| `create_or_update_genie` | Create or update a Genie Space |
| `get_genie` | Get Genie Space details |
| `delete_genie` | Delete a Genie Space |
### Conversation API
| Tool | Purpose |
| -------------------- | -------------------------------------------------- |
| `ask_genie` | Ask a question to a Genie Space, get SQL + results |
| `ask_genie_followup` | Ask follow-up question in existing conversation |
### Supporting Tools
| Tool | Purpose |
| ------------------- | --------------------------------------------- |
| `get_table_details` | Inspect table schemas before creating a space |
| `execute_sql` | Test SQL queries directly |
## Quick Start
### 1. Inspect Your Tables
Before creating a Genie Space, understand your data:
```python
get_table_details(
catalog="my_catalog",
schema="sales",
table_stat_level="SIMPLE"
)
```
### 2. Create the Genie Space
```python
create_or_update_genie(
display_name="Sales Analytics",
table_identifiers=[
"my_catalog.sales.customers",
"my_catalog.sales.orders"
],
description="Explore sales data with natural language",
sample_questions=[
"What were total sales last month?",
"Who are our top 10 customers?"
]
)
```
### 3. Ask Questions (Conversation API)
```python
ask_genie(
space_id="your_space_id",
question="What were total sales last month?"
)
# Returns: SQL, columns, data, row_count
```
## Workflow
```
1. Inspect tables → get_table_details
2. Create space → create_or_update_genie
3. Query space → ask_genie (or test in Databricks UI)
4. Curate (optional) → Use Databricks UI to add instructions
```
## Reference Files
- [spaces.md](spaces.md) - Creating and managing Genie Spaces
- [conversation.md](conversation.md) - Asking questions via the Conversation API
## Prerequisites
Before creating a Genie Space:
1. **Tables in Unity Catalog** - Bronze/silver/gold tables with the data
2. **SQL Warehouse** - A warehouse to execute queries (auto-detected if not specified)
### Creating Tables
Use these skills in sequence:
1. `synthetic-data-generation` - Generate raw parquet files
2. `spark-declarative-pipelines` - Create bronze/silver/gold tables
## Common Issues
| Issue | Solution |
| -------------------------- | ------------------------------------------------------------------------ |
| **No warehouse available** | Create a SQL warehouse or provide `warehouse_id` explicitly |
| **Poor query generation** | Add instructions and sample questions that reference actual column names |
| **Slow queries** | Ensure warehouse is running; use OPTIMIZE on tables |
<!-- Source: .faos/custom/skills/cloud/databricks/databricks-genie/SKILL.md -->
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