Guides users through discovering their database requirements, recommends a Google Cloud database based on a recommendation matrix, and assists in database creation. Use when a user asks 'What database service should I use?', 'Help me pick a database', or when a user wants to create a new database on Google Cloud. Don't use for general Google Cloud maintenance, managing existing databases, or database migrations.
Scanned 9/2/2026
Install to Claude Code
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---
name: cloud-databases-onboarding
metadata:
category: Databases
description: >-
Guides users through discovering their database requirements, recommends a
Google Cloud database based on a recommendation matrix, and assists in database
creation. Use when a user asks 'What database service should I use?', 'Help me pick
a database', or when a user wants to create a new database on Google Cloud.
Don't use for general Google Cloud maintenance, managing existing databases, or database migrations.
---
# Google Cloud Database Onboarding Skill
This skill provides domain instructions, decision matrices, and
Infrastructure-as-Code workflows to guide users through discovering their exact
database requirements, selecting an optimal Google Cloud database service, and
drafting starter resource provisioning code for user review.
## Validation & Progressive Disclosure
A validation script is provided to verify the skill's reference files and
formatting:
```bash
python3 scripts/database_onboarding_skill.py --verify
```
* **Reading / Progressive Disclosure:** When interacting with a user during a
conversation, load reference files progressively. Follow the Just-in-Time
(JiT) loading instructions outlined in the phases below.
--------------------------------------------------------------------------------
## Workflow & Just-in-Time (JiT) Instructions
This workflow operates in three distinct sequential phases. Evaluate the active
conversation history to determine the current phase and follow the corresponding
instructions:
### Phase 1: Requirement Discovery & Information Gathering
When a user asks `"What database should I use?"` or requires guidance on Google
Cloud database selection, you must initiate the Discovery phase.
1. **Load Discovery Instructions (JiT):** Read the complete contents of
`references/onboarding_prompts.md` using `view_file`.
2. **Execute Discovery:** Follow the detailed Phase 1 instructions in
`onboarding_prompts.md` to gather core requirements (data model, workload,
scale, and migration context) using user-friendly phrasing and enforcing
constraints (such as the 90% confidence rule) before proposing any
recommendation.
### Phase 2: Recommendation Analysis & Matrix Consultation
Once you have gathered sufficient explicit discovery context, you must determine
the optimal Google Cloud database recommendation.
1. **Consult Matrix & Formulate Recommendation (JiT):** Follow the Phase 2
instructions in `references/onboarding_prompts.md`. This involves distilling
requirements, calling the database selection tool (or consulting
`references/recommendation_matrix.txt` directly if the tool is unavailable),
and formulating a single recommendation.
2. **Deliver Recommendation:** Deliver the recommendation to the user, mapping
destination codes to plain English, explaining the reasoning, and offering
to help with provisioning as detailed in `onboarding_prompts.md`.
### Phase 3: Implementation & Provisioning (Plan-Validate-Execute Pattern)
When the user accepts the recommendation and requests to provision or modify
cloud resources, follow the Phase 3 instructions in
`references/onboarding_prompts.md` using a strict **Plan-Validate-Execute** pattern.
Limit your actions to creating and validating draft artifacts for user review.
1. **Analyze the Workspace:** Scan the user's workspace/open files/related
directories with database resources scripts.
2. **Obtain User Confirmation:** If the target infrastructure files are not
clear, ask the user explicitly to confirm the file paths or target directory
before modifying anything.
3. **Draft Infrastructure Plan (Plan):** Create or edit the necessary Terraform
configuration files or any other relevant scripts necessary to provision the
resources. When creating or editing Terraform files or any other database
resource provisioning script, you MUST:
* Add a stamped header comment at the top of every generated Terraform
file/ shell script or any other resource provisioning script. (e.g., `#
Generated with cloud onboarding skills selector @date`, replacing
`@date` with the current date/timestamp).
* Add a custom default tag like `resource_generated_by = "cloud db
onboarding skill"` under the `default_tags` block or as a resource
label/tag.
4. **Validate Infrastructure Code (Validate):** Before finalizing, you must
validate the drafted infrastructure code to verify syntax and configuration
correctness. *Why this matters:* Validating Terraform code ensures that
configuration blocks, IAM bindings, and instance sizing are
syntax-error-free and strictly enforceable before code review.
5. **Create Pull Request (Execute):** Once validation succeeds with zero
errors, automatically create a Pull request containing the validated
Terraform/shell/scripts updates for user review. Leave live infrastructure
changes (`terraform apply` or `gcloud` commands) to human review or
automated CI/CD pipelines.
--------------------------------------------------------------------------------
## Supporting Resources & Documentation
- [Google Cloud Databases Overview](https://cloud.google.com/products/databases.md.txt)
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