9148c358d0
Topic_Agent/Topic_Blog/Topics/Topics_Biz/Topics_Meeting/Topics_Rag의 마크다운 지식 문서를 Topic_General/Topic_Programming/Topic_Graphic/Topic_Business 4개 카테고리로 재분류. - 중복 제거: frontmatter의 status:duplicate/merged + duplicate_of/redirect_to 필드로 자기 자신을 중복으로 선언한 리다이렉트 stub 1032개 제거, 완전 동일 내용 파일 472개 제거, 동일 파일명·다른 내용 충돌 시 더 큰(완전한) 버전만 유지(162개 제거) — 총 1639개 중복 제거. - 분류: 폴더 단위로 명확한 항목(AI_and_ML/Coding/Architecture 등 → Programming, Comfyui/Visual_Effects → Graphic, Topics_Biz/Topics_Meeting/사업 등 → Business, Poetic_Blog_Writing/창의성/Game_Design 등 → General)은 폴더 우선순위로, 나머지 혼재 폴더(Topic_Agent/Topic_Blog/Topics 루트/Thinking & Reasoning/Other/UI_UX_Assets)는 title/tags 키워드 스코어링으로 파일 단위 분류(불명확한 경우 General로 폴백). 원본 폴더명은 "From_*" 서브폴더로 보존해 추적 가능성 유지. - 최종 배치: Programming 2784 / General 1608 / Graphic 285 / Business 249 = 4926개 문서. - 에이전트 운영 상태(.astra/.agent/.obsidian/sessions/memory/_company/docs/lessons/_shared/src)는 지식 콘텐츠가 아니므로 재분류 대상에서 제외하고 원위치 유지. - Topics/Topic_email(상위 보호 폴더 Topic_email과 파일명 100% 중복) 삭제 — 보호 폴더 자체는 미변경. - 완전히 비게 된 Topic_Agent/Topic_Blog/Topics_Biz/Topics_Rag 폴더 제거.
251 lines
7.4 KiB
Markdown
251 lines
7.4 KiB
Markdown
---
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id: wiki-2026-0508-g-stack-integration-guide
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title: G Stack Integration Guide
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category: 10_Wiki/Topics
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status: verified
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canonical_id: self
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aliases: [G-Stack, G Stack Integration, GitHub-Gemini-Google Stack]
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duplicate_of: none
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source_trust_level: A
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confidence_score: 0.9
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verification_status: applied
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tags: [integration, devops, ci-cd, ai, google]
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raw_sources: []
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last_reinforced: 2026-05-10
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github_commit: pending
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tech_stack:
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language: python
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framework: github-actions
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---
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# G-Stack Integration Guide
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## 매 한 줄
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> **"매 GitHub + Gemini + Google Cloud 를 single coherent dev stack 으로 묶는다"**. 매 G-Stack은 source control(GitHub), AI assist(Gemini Code Assist), cloud runtime(GCP/Cloud Run/Vertex AI) 의 통합 — 2026 Google ecosystem 의 매 default flow. GitHub Actions ↔ Cloud Build ↔ Vertex AI ↔ Gemini API.
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## 매 핵심
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### 매 G-Stack 구성
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- **G**itHub: source, Actions CI/CD, Codespaces, Copilot 대안 = Gemini Code Assist
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- **G**emini: API (Gemini 2.5 Pro, Flash), Code Assist IDE plugin, Vertex AI
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- **G**oogle Cloud: Cloud Run, GKE, Cloud Build, Artifact Registry, Vertex AI
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### 매 핵심 integration points
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- **OIDC**: 매 GitHub Actions → GCP keyless auth (no JSON key)
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- **Workload Identity Federation**: 매 short-lived token
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- **Cloud Build trigger**: 매 GitHub push → automated build
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- **Vertex AI agent**: 매 Gemini 모델 + custom data RAG
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### 매 응용
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1. CI/CD: GitHub Actions deploy to Cloud Run.
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2. AI-assisted dev: Gemini Code Assist in VSCode.
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3. Custom RAG: Vertex AI Agent Builder + GitHub repo source.
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4. Production LLM: Gemini API + Cloud Run wrapper.
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## 💻 패턴
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### GitHub Actions → Cloud Run (OIDC, no key)
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```yaml
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# .github/workflows/deploy.yml
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name: Deploy to Cloud Run
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on:
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push:
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branches: [main]
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permissions:
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contents: read
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id-token: write # 매 OIDC token 발급
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jobs:
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deploy:
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runs-on: ubuntu-latest
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steps:
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- uses: actions/checkout@v4
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- id: auth
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uses: google-github-actions/auth@v2
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with:
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workload_identity_provider: projects/123456/locations/global/workloadIdentityPools/github/providers/github
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service_account: deploy@my-project.iam.gserviceaccount.com
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- uses: google-github-actions/setup-gcloud@v2
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- name: Build and Deploy
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run: |
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gcloud builds submit --tag us-central1-docker.pkg.dev/my-project/repo/app
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gcloud run deploy app \
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--image us-central1-docker.pkg.dev/my-project/repo/app \
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--region us-central1 \
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--allow-unauthenticated
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```
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### Workload Identity Federation 설정 (Terraform)
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```hcl
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resource "google_iam_workload_identity_pool" "github" {
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workload_identity_pool_id = "github"
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}
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resource "google_iam_workload_identity_pool_provider" "github" {
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workload_identity_pool_id = google_iam_workload_identity_pool.github.workload_identity_pool_id
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workload_identity_pool_provider_id = "github"
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attribute_mapping = {
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"google.subject" = "assertion.sub"
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"attribute.repository" = "assertion.repository"
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}
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attribute_condition = "assertion.repository_owner == 'myorg'"
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oidc {
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issuer_uri = "https://token.actions.githubusercontent.com"
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}
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}
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resource "google_service_account_iam_member" "github_act_as" {
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service_account_id = google_service_account.deploy.name
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role = "roles/iam.workloadIdentityUser"
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member = "principalSet://iam.googleapis.com/${google_iam_workload_identity_pool.github.name}/attribute.repository/myorg/myrepo"
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}
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```
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### Gemini API (Python, Cloud Run)
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```python
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import os
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from google import genai
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from fastapi import FastAPI
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client = genai.Client(api_key=os.environ["GEMINI_API_KEY"])
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app = FastAPI()
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@app.post("/chat")
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async def chat(prompt: str):
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response = client.models.generate_content(
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model="gemini-2.5-pro",
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contents=prompt,
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config={
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"temperature": 0.7,
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"max_output_tokens": 2048,
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}
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)
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return {"text": response.text}
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```
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### Vertex AI RAG (GitHub repo as source)
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```python
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from google.cloud import aiplatform
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from vertexai.preview import rag
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aiplatform.init(project="my-project", location="us-central1")
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corpus = rag.create_corpus(
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display_name="github-repo-rag",
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embedding_model_config=rag.EmbeddingModelConfig(
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publisher_model="publishers/google/models/text-embedding-005"
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)
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)
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# 매 GitHub mirror → GCS → Vertex
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rag.import_files(
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corpus_name=corpus.name,
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paths=["gs://my-bucket/github-mirror/"],
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chunk_size=1024,
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)
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# 매 query
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response = rag.retrieval_query(
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rag_resources=[rag.RagResource(rag_corpus=corpus.name)],
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text="How does the auth module work?",
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similarity_top_k=5,
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)
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```
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### Gemini Code Assist (VSCode settings)
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```json
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{
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"geminicodeassist.project": "my-gcp-project",
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"geminicodeassist.enableInlineCompletions": true,
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"geminicodeassist.enableTelemetry": false,
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"github.copilot.enable": { "*": false }
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}
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```
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### Cloud Build trigger (GitHub push)
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```yaml
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# cloudbuild.yaml
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steps:
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- name: 'gcr.io/cloud-builders/docker'
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args: ['build', '-t', 'us-central1-docker.pkg.dev/$PROJECT_ID/repo/app:$COMMIT_SHA', '.']
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- name: 'gcr.io/cloud-builders/docker'
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args: ['push', 'us-central1-docker.pkg.dev/$PROJECT_ID/repo/app:$COMMIT_SHA']
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- name: 'gcr.io/google.com/cloudsdktool/cloud-sdk'
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entrypoint: gcloud
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args:
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- run
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- deploy
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- app
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- --image=us-central1-docker.pkg.dev/$PROJECT_ID/repo/app:$COMMIT_SHA
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- --region=us-central1
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options:
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logging: CLOUD_LOGGING_ONLY
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```
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### Secret Manager → Cloud Run
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```bash
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# 매 secret 생성
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echo -n "$GEMINI_KEY" | gcloud secrets create gemini-api-key --data-file=-
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# 매 Cloud Run 에 마운트
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gcloud run deploy app \
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--image=... \
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--update-secrets=GEMINI_API_KEY=gemini-api-key:latest \
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--service-account=deploy@my-project.iam.gserviceaccount.com
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```
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### Monitoring (Cloud Logging + Sentry)
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```python
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import google.cloud.logging
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import sentry_sdk
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google.cloud.logging.Client().setup_logging()
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sentry_sdk.init(dsn=os.environ["SENTRY_DSN"], traces_sample_rate=0.1)
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import logging
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logging.info("매 structured log to Cloud Logging")
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```
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## 매 결정 기준
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| 상황 | G-Stack tool |
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|---|---|
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| Solo prototype | GitHub + Gemini Code Assist + Cloud Run |
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| Production API | + Vertex AI + Secret Manager + Cloud Build |
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| ML/LLM heavy | Vertex AI Agent Builder + RAG |
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| Enterprise | + WIF + Org policy + VPC-SC |
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| Multi-cloud | GitHub Actions abstraction layer |
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**기본값**: 매 OIDC (no JSON key), Cloud Run (serverless), Gemini 2.5 Flash (cheap default).
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## 🔗 Graph
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- 부모: [[DevOps]]
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- 응용: [[GitHub Actions]]
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- Adjacent: [[OIDC]] · [[Infrastructure as Code]]
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## 🤖 LLM 활용
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**언제**: 매 GCP+GitHub 통합 troubleshooting, OIDC 설정 검증, Vertex AI agent 설계.
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**언제 X**: 매 multi-cloud agnostic — G-Stack 은 GCP-tied.
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## ❌ 안티패턴
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- **JSON service account key**: 매 long-lived key — leak risk. OIDC 로 교체.
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- **Hardcoded Gemini key in repo**: 매 obvious leak. Secret Manager 사용.
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- **Public Cloud Run**: 매 `--allow-unauthenticated` 인데 매 sensitive endpoint → 매 IAM/IAP.
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- **No budget alert**: 매 Vertex AI 무한 query → 매 unexpected bill.
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## 🧪 검증 / 중복
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- Verified (GitHub Docs, "Configuring OpenID Connect in Google Cloud Platform").
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- Verified (Google Cloud Docs, Workload Identity Federation, 2024).
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- Verified (Vertex AI RAG Engine GA, 2024).
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- 신뢰도 A.
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## 🕓 Changelog
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| 날짜 | 변경 |
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|---|---|
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| 2026-05-08 | Phase 1 |
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| 2026-05-10 | Manual cleanup — GitHub+Gemini+GCP integration patterns |
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