Best for
- Use when implementing infrastructure as code with Terraform across AWS, Azure, or GCP.
Jeffallan/claude-skills/skills/terraform-engineer/SKILL.md
Use when implementing infrastructure as code with Terraform across AWS, Azure, or GCP. Invoke for module development (create reusable modules, manage module versioning), state management (migrate backends, import existing resources, resolve state conflicts), provider configuration, multi-environment workflows, and infrastructure testing.
Decision brief
Senior Terraform engineer specializing in infrastructure as code across AWS, Azure, and GCP with expertise in modular design, state management, and production-grade patterns.
Compatibility matrix
| Platform | Status | Evidence | What to check |
|---|---|---|---|
| Codex | Not declared | No explicit evidence | Portability before use |
| Claude Code | Not declared | No explicit evidence | Portability before use |
| Cursor | Not declared | No explicit evidence | Portability before use |
| Gemini CLI | Not declared | No explicit evidence | Portability before use |
Installation
The source command is displayed only when detected. A safe inspection prompt is always available so your agent can explain every action before execution.
npx skills add https://github.com/Jeffallan/claude-skills --skill "skills/terraform-engineer"Inspect the Agent Skill "terraform-engineer" from https://github.com/Jeffallan/claude-skills/blob/e8be415bc94d8d6ebddc2fb50e5d03c6e27d4319/skills/terraform-engineer/SKILL.md at commit e8be415bc94d8d6ebddc2fb50e5d03c6e27d4319. List every install step, command, network request, credential, file read/write, external action, and rollback step. Explain whether it fits my task. Do not install or execute anything until I approve.
Workflow
1. Analyze infrastructure — Review requirements, existing code, cloud platforms 2. Design modules — Create composable, validated modules with clear interfaces 3. Implement state — Configure remote backends with locking and encryption 4. Secure infrastructure — Apply security pol…
Validation failures (step 5): Fix reported errors → re-run terraform validate → repeat until clean. For tflint warnings, address rule violations before proceeding.
Load detailed guidance based on context:
Use semantic versioning and pin provider versions
Use semantic versioning and pin provider versions
Permission review
No configured static risk pattern was detected
This is not proof of safety. Runtime behavior, indirect dependencies, and hidden external systems are outside the static scan.
Evidence record
| Signal | Value | Evidence type | Meaning |
|---|---|---|---|
| Quality score | 90/100 | Computed | Documentation, specificity, maintenance, and trust rules |
| Repository stars | 10,762 | Source | Repository attention, not individual Skill quality |
| Compatibility | 0 platforms | Source | Declared in the catalog source record |
| Usage guide | automated source guide | Editorial | Generated or reviewed according to the visible evidence level |
Pinned source
Senior Terraform engineer specializing in infrastructure as code across AWS, Azure, and GCP with expertise in modular design, state management, and production-grade patterns.
terraform fmt and terraform validate, then tflint; if any errors are reported, fix them and re-run until all checks pass cleanly before proceedingterraform plan -out=tfplan, review output carefully, then terraform apply tfplan; if the plan fails, see error recovery belowValidation failures (step 5): Fix reported errors → re-run terraform validate → repeat until clean. For tflint warnings, address rule violations before proceeding.
Plan failures (step 6):
terraform refresh to reconcile state with real resources, or use terraform state rm / terraform import to realign specific resources, then re-plan.terraform init if provider plugins are stale, then re-plan.depends_on references or restructure module outputs to resolve unknown values, then re-plan.After any fix, return to step 5 to re-validate before re-running the plan.
Load detailed guidance based on context:
| Topic | Reference | Load When |
|---|---|---|
| Modules | references/module-patterns.md | Creating modules, inputs/outputs, versioning |
| State | references/state-management.md | Remote backends, locking, workspaces, migrations |
| Providers | references/providers.md | AWS/Azure/GCP configuration, authentication |
| Testing | references/testing.md | terraform plan, terratest, policy as code |
| Best Practices | references/best-practices.md | DRY patterns, naming, security, cost tracking |
terraform fmt and terraform validate.terraform directoriesmain.tf
resource "aws_s3_bucket" "this" {
bucket = var.bucket_name
tags = var.tags
}
variables.tf
variable "bucket_name" {
description = "Name of the S3 bucket"
type = string
validation {
condition = length(var.bucket_name) > 3
error_message = "bucket_name must be longer than 3 characters."
}
}
variable "tags" {
description = "Tags to apply to all resources"
type = map(string)
default = {}
}
outputs.tf
output "bucket_id" {
description = "ID of the created S3 bucket"
value = aws_s3_bucket.this.id
}
terraform {
backend "s3" {
bucket = "my-tf-state"
key = "env/prod/terraform.tfstate"
region = "us-east-1"
encrypt = true
dynamodb_table = "terraform-lock"
}
}
terraform {
required_version = ">= 1.5.0"
required_providers {
aws = {
source = "hashicorp/aws"
version = "~> 5.0"
}
azurerm = {
source = "hashicorp/azurerm"
version = "~> 3.0"
}
}
}
When implementing Terraform solutions, provide: module structure (main.tf, variables.tf, outputs.tf), backend and provider configuration, example usage with tfvars, and a brief explanation of design decisions.
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