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google-cloud-waf-reliability

Generates guidance for reliability, resilience, availability, redundancy, fault-tolerance, and disaster recovery (DR) for Google Cloud workloads based on the design principles and recommendations in the Google Cloud Well-Architected Framework

Install / Use

npx skills add google/skills --skill google-cloud-waf-reliability

Installs into whichever agent you are using.

About this skill
📄

SKILL.md

Installable skill definition

Quality Score

88/100

Category

Marketing

Supported Platforms

Universal

Our assessment of google-cloud-waf-reliability

google-cloud-waf-reliability scores 88/100 on our quality scale, 99th of 175 Marketing skills we index.

Its SKILL.md is 7.9 KB long, split into 6 sections and no code examples: a thorough specification that gives an agent plenty to work with.

With 20,340 GitHub stars, it is one of the more widely adopted skills in the catalogue.

Substance
29/30
Structure
11/20
Description
15/15
Adoption
18/20
Freshness
15/15

Maintenance, license and trust

  • The repository was last updated 2 days ago, so google-cloud-waf-reliability is actively maintained.
  • It is released under the Apache-2.0 license, a permissive license that allows use, modification and commercial use with attribution.
  • Its trust signals score 100/100, with no cautions. These come from repository metadata, not a code audit — read the skill file before letting an agent act on it.

Safety scan

No issues found

Our scan of the whole file found no instruction hijacking, hidden characters, credential access, data exfiltration or destructive commands.

Automated pattern scan on 2026-09-26. It catches known dangerous patterns, not every risk — read a skill before letting an agent act on it.

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Frequently asked questions

How do I install google-cloud-waf-reliability?
Run npx skills add google/skills --skill google-cloud-waf-reliability. The install tabs above show the steps for each supported agent.
Which AI agents does google-cloud-waf-reliability work with?
It is written for Universal, as a SKILL.md file. Other agents that read the same format can often use it too.
Is google-cloud-waf-reliability safe to use?
Our scan of the whole file found no instruction hijacking, hidden characters, credential access, data exfiltration or destructive commands. It is Apache-2.0-licensed and scores 100/100 on trust signals. Skills are instructions an agent will follow, so read the file before installing it and do not approve commands you do not understand.
Is google-cloud-waf-reliability still maintained?
The repository was last updated 2 days ago, so google-cloud-waf-reliability is actively maintained.

name: google-cloud-waf-reliability metadata: version: "1.0.0" category: WellArchitectedFramework description: >- Generates guidance for reliability, resilience, availability, redundancy, fault-tolerance, and disaster recovery (DR) for Google Cloud workloads based on the design principles and recommendations in the Google Cloud Well-Architected Framework. Use when the user asks to evaluate, design, or improve the reliability, resilience, availability, or disaster recovery capabilities of Google Cloud workloads.

Google Cloud Well-Architected Framework skill for the Reliability pillar

Overview

The Reliability pillar of the Google Cloud Well-Architected Framework provides principles and recommendations to help you design, deploy, and manage reliable, resilient, and highly available workloads in Google Cloud. A reliable system consistently performs its intended functions under defined conditions, is resilient to failures, and recovers gracefully from disruptions, thereby minimizing downtime, enhancing user experience, and ensuring data integrity.

Core principles

The recommendations in the reliability pillar of the Well-Architected Framework are aligned with the following core principles:

  • Define reliability based on user-experience goals: Measurement of reliability should reflect the actual experience of the system's users rather than merely relying on infrastructure metrics. Focus on outcomes that matter most to users. Grounding document: https://docs.cloud.google.com/architecture/framework/reliability/define-reliability-based-on-user-experience-goals.md.txt

  • Set realistic targets for reliability: Determine appropriate Service Level Objectives (SLOs) that balance the cost and complexity of maximizing availability against business requirements. Provide guidance on defining Service Level Objectives (SLOs) based on monitoring signals, error budgets, and user experience goals. Grounding document: https://docs.cloud.google.com/architecture/framework/reliability/set-targets.md.txt

  • Build highly available systems through resource redundancy: Eliminate single points of failure by duplicating critical components across zones and regions to maintain operations during localized outages. Grounding document: https://docs.cloud.google.com/architecture/framework/reliability/build-highly-available-systems.md.txt

  • Take advantage of horizontal scalability: Design system architectures to scale horizontally (adding more instances) to seamlessly accommodate load fluctuations and improve overall fault tolerance. Incorporate proactive capacity planning to monitor and adjust project quotas and resource availability anticipating sudden load spikes. Grounding document: https://docs.cloud.google.com/architecture/framework/reliability/horizontal-scalability.md.txt

  • Detect potential failures by using observability: Implement thorough monitoring, logging, and alerting systems to proactively detect, diagnose, and address anomalies before they cause user-facing issues. Monitor the golden signals (latency, traffic, errors, and saturation) and set up alerts for when the signals cross specified thresholds. Use Cloud Monitoring to build comprehensive dashboards for the golden signals. Grounding document: https://docs.cloud.google.com/architecture/framework/reliability/observability.md.txt

  • Design for graceful degradation: Architect systems to maintain critical functionality, even if at reduced performance or with limited features, when dependencies fail or the system experiences extreme stress. To avoid cascading failures, recommend setting up alerts to detect failures early, using the circuit-breaker pattern, handling timeouts effectively to release blocked resources, utilizing retries with exponential backoff and jitter to avoid overwhelming recovering backend systems, and returning custom error responses or static fallback pages. Grounding document: https://docs.cloud.google.com/architecture/framework/reliability/graceful-degradation.md.txt

  • Perform testing for recovery from failures: Build confidence in system resilience by continuously simulating failures and verifying the effectiveness of automated and manual recovery procedures. Grounding document: https://docs.cloud.google.com/architecture/framework/reliability/perform-testing-for-recovery-from-failures.md.txt

  • Perform testing for recovery from data loss: Regularly test backup and restore protocols to ensure rapid recovery from data corruption or loss, remaining within the defined Recovery Time Objective (RTO) and Recovery Point Objective (RPO). Grounding document: https://docs.cloud.google.com/architecture/framework/reliability/perform-testing-for-recovery-from-data-loss.md.txt

  • Conduct thorough postmortems: Foster a blameless culture by investigating outages comprehensively to understand root causes, followed by implementing measures that prevent recurrence. Grounding document: https://docs.cloud.google.com/architecture/framework/reliability/conduct-postmortems.md.txt

Relevant Google Cloud products

The following are examples of Google Cloud products and features that are relevant to reliability:

  • Compute: Compute Engine Managed Instance Groups (MIGs), Google Kubernetes Engine (GKE), Cloud Run
  • Networking: Cloud Load Balancing, Cloud CDN, Cloud DNS
  • Storage and databases: Cloud Storage (multi-region), Cloud SQL High Availability, Spanner, Filestore, Firestore
  • Operations: Cloud Monitoring, Cloud Logging, Google Cloud Managed Service for Prometheus
  • Disaster recovery: Backup and DR Service, Filestore backups

Workload assessment questions

Ask appropriate questions to understand the reliability-related requirements and constraints of the workload and the user's organization. Choose questions from the following list:

  • How does your organization define and measure the reliability of your systems in relation to user experience?
  • How does your organization approach setting reliability targets for your services?
  • What is your organization's strategy for ensuring high availability through resource redundancy?
  • How does your organization leverage horizontal scalability to maintain performance and reliability?
  • How does your organization utilize observability (metrics, logs, traces) to gain insights and detect potential failures?
  • How does your organization manage alerting based on observability data to ensure timely responses to significant issues without causing alert fatigue?
  • What measures does your organization take to ensure systems can gracefully degrade during high load or partial failures?
  • How frequently and comprehensively does your organization test for recovery from system failures (e.g., regional failovers, release rollbacks)?
  • What is your organization's approach to testing for recovery from data loss?
  • How does your organization conduct and utilize postmortems after incidents?

Validation checklist

Use the following checklist to evaluate the architecture's alignment with reliability recommendations:

  • User-focused SLIs and SLOs are explicitly defined and actively monitored.
  • The architecture avoids single points of failure through cross-zone or cross-region redundancy.
  • Autoscaling is enabled to handle variable demand without manual intervention.
  • Application and infrastructure health checks are configured to trigger automated failovers.
  • Regular backup schedules are in place, and restoration processes are routinely tested.
  • The system architecture incorporates patterns like circuit breakers, retries with exponential backoff, and rate limiting to support graceful degradation.
  • Game days or chaos engineering practices are regularly held to validate failure recovery.
  • A formalized, blameless postmortem process exists to ensure organizational learning from operational incidents.

Related Skills

View on GitHub
GitHub Stars20.3k
CategoryMarketing
Updated2d ago
Forks1.7k

Languages

Python

Trust signals

100/100

From repository metadata: license, adoption, age and documentation. Not a code audit — see the Safety scan above for what the skill file itself contains.

No cautions