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multi-cloud-architecture

Design multi-cloud architectures using a decision framework to select and integrate services across AWS, Azure, GCP, and OCI. Use when building multi-cloud systems, avoiding vendor lock-in, or leveraging best-of-breed services from multiple providers.

DeepseekModel 官方收录技能 质量 优秀 · 90 v1.0.0

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https://deepseekmodel.com/api/download.php?id=wshobson-agents-plugins-cloud-infrastructure-skills-multi-cloud-architecture-skill-md&format=skill
下载 .skill 标准格式,含 system_prompt 与 model_config,导入任意 Agent 框架即可使用
.skill 文件中 system_prompt 字段的实际内容。
name multi-cloud-architecture description Design multi-cloud architectures using a decision framework to select and integrate services across AWS, Azure, GCP, and OCI. Use when building multi-cloud systems, avoiding vendor lock-in, or leveraging best-of-breed services from multiple providers. Multi-Cloud Architecture Decision framework and patterns for architecting applications across AWS, Azure, GCP, and OCI. Purpose Design cloud-agnostic architectures and make informed decisions about service selection across cloud providers. When to Use Design multi-cloud strategies Migrate between cloud providers Select cloud services for specific workloads Implement cloud-agnostic architectures Optimize costs across providers Cloud Service Comparison Compute Services AWS Azure GCP OCI Use Case EC2 Virtual Machines Compute Engine Compute IaaS VMs ECS Container Instances Cloud Run Container Instances Containers EKS AKS GKE OKE Kubernetes Lambda Functions Cloud Functions Functions Serverless Fargate Container Apps Cloud Run Container Instances Managed containers Storage Services AWS Azure GCP OCI Use Case S3 Blob Storage Cloud Storage Object Storage Object storage EBS Managed Disks Persistent Disk Block Volumes Block storage EFS Azure Files Filestore File Storage File storage Glacier Archive Storage Archive Storage Archive Storage Cold storage Database Services AWS Azure GCP OCI Use Case RDS SQL Database Cloud SQL MySQL HeatWave Managed SQL DynamoDB Cosmos DB Firestore NoSQL Database NoSQL Aurora PostgreSQL/MySQL Cloud Spanner Autonomous Database Distributed SQL ElastiCache Cache for Redis Memorystore OCI Cache Caching Reference: See references/service-comparison.md for complete comparison Multi-Cloud Patterns Pattern 1: Single Provider with DR Primary workload in one cloud Disaster recovery in another Database replication across clouds Automated failover Pattern 2: Best-of-Breed Use best service from each provider AI/ML on GCP Enterprise apps on Azure Regulated data platforms on OCI General compute on AWS Pattern 3: Geographic Distribution Serve users from nearest cloud region Data sovereignty compliance Global load balancing Regional failover Pattern 4: Cloud-Agnostic Abstraction Kubernetes for compute PostgreSQL for database S3-compatible storage (MinIO) Open source tools Cloud-Agnostic Architecture Use Cloud-Native Alternatives Compute: Kubernetes (EKS/AKS/GKE/OKE) Database: PostgreSQL/MySQL (RDS/SQL Database/Cloud SQL/MySQL HeatWave) Message Queue: Apache Kafka or managed streaming (MSK/Event Hubs/Confluent/OCI Streaming) Cache: Redis (ElastiCache/Azure Cache/Memorystore/OCI Cache) Object Storage: S3-compatible API Monitoring: Prometheus/Grafana Service Mesh: Istio/Linkerd Abstraction Layers Application Layer ↓ Infrastructure Abstraction (Terraform) ↓ Cloud Provider APIs ↓ AWS / Azure / GCP / OCI Cost Comparison Compute Pricing Factors AWS: On-demand, Reserved, Spot, Savings Plans Azure: Pay-as-you-go, Reserved, Spot GCP: On-demand, Committed use, Preemptible OCI: Pay-as-you-go, annual commitments, burstable/flexible shapes, preemptible instances Cost Optimization Strategies Use reserved/committed capacity (30-70% savings) Leverage spot/preemptible instances Right-size resources Use serverless for variable workloads Optimize data transfer costs Implement lifecycle policies Use cost allocation tags Monitor with cloud cost tools Reference: See references/multi-cloud-patterns.md Migration Strategy Phase 1: Assessment Inventory current infrastructure Identify dependencies Assess cloud compatibility Estimate costs Phase 2: Pilot Select pilot workload Implement in target cloud Test thoroughly Document learnings Phase 3: Migration Migrate workloads incrementally Maintain dual-run period Monitor performance Validate functionality Phase 4: Optimization Right-size resources Implement cloud-native services Optimize costs Enhance security Best Practices Use infrastructure as code (Terraform/OpenTofu) Implement CI/CD pipelines for deployments Design for failure across clouds Use managed services when possible Implement comprehensive monitoring Automate cost optimization Follow security best practices Document cloud-specific configurations Test disaster recovery procedures Train teams on multiple clouds Related Skills terraform-module-library - For IaC implementation cost-optimization - For cost management hybrid-cloud-networking - For connectivity
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下载的 .skill 包内含以下字段。
字段 说明
format格式标识(skill/v1)
skill_id技能唯一 ID
name技能名称
version版本号
description技能描述
category所属分类(数组)
trigger_words触发词列表
tags标签列表
source来源标识
source_url来源链接(本页地址)
exported_at导出时间(每次下载生成)
system_prompt系统提示词正文
model_config模型参数:provider / model / temperature / max_tokens / top_p
examples示例
install_guide各平台导入说明(Coze / Dify / Claude / 自定义框架)
同一份技能可按不同平台格式导出。
.skill 标准格式,含 system_prompt 与 model_config,导入任意 Agent 框架即可使用 下载
.skillpro 增强格式,额外含脚本 / 工具 / 依赖 / 钩子占位 下载
.json 纯 JSON 导出,只含 system_prompt 与模型参数 下载
Coze 带 frontmatter 的 Markdown,Coze 平台导入用 下载
Dify Dify DSL,创建应用后直接导入 下载

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