| description | Generates sustainability-focused guidance for Google Cloud workloads based on the design principles and recommendations in the Google Cloud Well-Architected Framework (WAF). Use this skill to evaluate a workload, identify environmental impact requirements, and provide actionable recommendations to build, deploy, and manage the workload sustainably in Google Cloud. |
| metadata | {"github-path":"skills/cloud/google-cloud-waf-sustainability","github-ref":"refs/heads/main","github-repo":"https://github.com/google/skills","github-tree-sha":"ae4f2bab66f6e0db9d44ee61e77edc9fb244d6df"} |
| name | google-cloud-waf-sustainability |
Google Cloud Well-Architected Framework skill for the Sustainability pillar
Overview
The Sustainability pillar of the Google Cloud Well-Architected Framework
provides principles and recommendations to help you minimize the environmental
impact of your cloud workloads. It focuses on a shared responsibility
model—Google optimizes the sustainability of the cloud, while customers
optimize sustainability in the cloud. By making informed decisions about
architecture, resource allocation, and region selection, you can significantly
reduce your carbon footprint and improve overall energy efficiency.
Core principles
The recommendations in the sustainability pillar of the Well-Architected
Framework are aligned with the following core principles:
-
Shared responsibility: Define the boundaries of responsibility and
embrace a shared fate model, working with your cloud provider and partners
to achieve optimal environmental outcomes for the entire ecosystem.
Grounding document:
https://docs.cloud.google.com/architecture/framework/sustainability#shared-responsibility
-
Use regions that consume low-carbon energy: Prioritize Google Cloud
regions with a high percentage of Carbon-Free Energy (CFE) and "Low CO2"
indicators to lower the gross carbon emissions of your deployments.
Grounding document:
https://docs.cloud.google.com/architecture/framework/sustainability/low-carbon-regions
-
Optimize AI and ML workloads: Maximize computations per watt by matching
algorithmic needs to specialized hardware (like TPUs) and applying
mathematical techniques to reduce computational complexity. Grounding
document:
https://docs.cloud.google.com/architecture/framework/sustainability/ai-ml-energy-efficiency
-
Optimize resource usage: Eliminate energy waste by scaling resources to
zero when idle, rightsizing virtual machines, and prioritizing managed
services that dynamically match actual demand. Grounding document:
https://docs.cloud.google.com/architecture/framework/sustainability/optimize-resource-usage
-
Develop energy-efficient software: Design your applications to minimize
unnecessary CPU, memory, and network activity on both backend servers and
end-user devices by using event-driven logic and optimized assets. Grounding
document:
https://docs.cloud.google.com/architecture/framework/sustainability/energy-efficient-software
-
Optimize data and storage: Reduce the environmental footprint of your
storage by implementing lifecycle management to archive cold data and
eliminating "dark data" that provides no business value. Grounding document:
https://docs.cloud.google.com/architecture/framework/sustainability/optimize-storage
-
Continuously measure and improve: Gain visibility into your carbon
emissions by analyzing granular data, identifying hotspots, and taking
proactive steps to remediate inefficiencies. Grounding document:
https://docs.cloud.google.com/architecture/framework/sustainability/continuously-measure-improve
-
Promote a culture of sustainability: Embed sustainability into your
organizational governance, connect technical decisions to environmental
goals, and ensure staff have the skills to implement green practices.
Grounding document:
https://docs.cloud.google.com/architecture/framework/sustainability/culture
-
Align sustainability practices with industry guidelines: Ensure that
your sustainability initiatives are aligned with industry guidelines for
measurement, reporting, and verification, such as W3C Web Sustainability
Guidelines, Green Software Foundation, and Greenhouse Gas Protocol.
Grounding document:
https://docs.cloud.google.com/architecture/framework/sustainability/industry-guidelines
Relevant Google Cloud products
The following are examples of Google Cloud products and features that are
relevant to sustainability:
Workload assessment questions
Ask appropriate questions to understand the sustainability-related requirements
and constraints of the workload and the user's organization. Choose questions
from the following list:
-
Cloud sustainability:
- How do you define the boundaries of sustainability responsibility
between your organization and your cloud provider?
- How do you leverage cloud capabilities and AI to drive sustainability
outcomes for your broader business operations?
- How does your cloud strategy account for the sustainability impact of
your partner ecosystem and multi-cloud environments?
-
Use regions that consume low-carbon energy:
- How do you incorporate carbon intensity into your Google Cloud region
selection strategy?
-
Optimize AI and ML workloads:
- How do you optimize the energy efficiency of your AI and machine
learning lifecycles?
-
Optimize resource usage:
- How do you ensure your infrastructure footprint dynamically matches
actual workload demand?
- How do you select and maintain the hardware types used for your cloud
workloads?
- What is your strategy for handling non-urgent or compute-intensive
background tasks?
- How do you balance the need for high availability and disaster recovery
with sustainability?
-
Develop energy-efficient software:
- How do you ensure your backend logic minimizes unnecessary CPU, memory,
and network activity?
- How do you manage the overall efficiency and maintenance of your
codebase for sustainability?
- How do you minimize the data volume and processing load that your
application places on end-user devices?
- How does your user experience (UX) design contribute to energy
efficiency for the end user?
-
Optimize data and storage:
- What process do you have for managing the environmental footprint of
your data and storage?
-
Continuously measure and improve:
- How do you analyze your carbon data to prioritize optimization efforts?
- How is sustainability measurement embedded into your organization’s
governance and culture?
- What is your current process for gaining visibility into your
cloud-related carbon emissions?
- What proactive steps do you take to remediate identified carbon
hotspots?
-
Promote a culture of sustainability:
- How do you connect individual technical decisions to the organization's
mission and hold teams accountable for results?
- How do you ensure your technical and business staff have the specific
skills required to implement sustainability practices?
Validation checklist
Use the following checklist to evaluate the architecture's alignment with
sustainability recommendations:
-
Cloud sustainability:
-
Use regions that consume low-carbon energy:
-
Optimize AI and ML workloads:
-
Optimize resource usage:
-
Develop energy-efficient software:
-
Optimize data and storage:
-
Continuously measure and improve:
-
Promote a culture of sustainability: