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aggregating-performance-metrics

Aggregate and centralize performance metrics from applications, systems,

Install / Use

npx skills add jeremylongshore/tons-of-skills-marketplace --skill aggregating-performance-metrics

Installs into whichever agent you are using.

About this skill
📄

SKILL.md

Installable skill definition

Quality Score

80/100

Category

Operations

Supported Platforms

Claude Code

Our assessment of aggregating-performance-metrics

aggregating-performance-metrics scores 80/100 on our quality scale, 450th of 548 Operations skills we index.

Its SKILL.md is 4.6 KB long, well organised into 14 sections and no code examples: a solid amount of guidance for an agent.

With 2,785 GitHub stars, it is one of the more widely adopted skills in the catalogue.

Substance
26/30
Structure
13/20
Description
12/15
Adoption
15/20
Freshness
15/15

Maintenance, license and trust

  • The repository was last updated 6 days ago, so aggregating-performance-metrics is actively maintained.
  • It is released under the MIT 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.

aggregating-performance-metrics compared with similar skills

All 4 of these similar skills score higher than aggregating-performance-metrics; compare them before choosing.

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Frequently asked questions

How do I install aggregating-performance-metrics?
Run npx skills add jeremylongshore/tons-of-skills-marketplace --skill aggregating-performance-metrics. The install tabs above show the steps for each supported agent.
Which AI agents does aggregating-performance-metrics work with?
It is written for Claude Code, as a SKILL.md file. Other agents that read the same format can often use it too.
Is aggregating-performance-metrics safe to use?
It is MIT-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 aggregating-performance-metrics still maintained?
The repository was last updated 6 days ago, so aggregating-performance-metrics is actively maintained.

name: aggregating-performance-metrics description: Aggregate and centralize performance metrics from applications, systems, databases, caches, and services. Use when consolidating monitoring data from multiple sources. Trigger with phrases like "aggregate metrics", "centralize monitoring", or "collect performance data". version: 1.21.0 allowed-tools: Read, Write, Bash(prometheus:), Bash(metrics:), Bash(monitoring:*), Grep license: MIT author: Jeremy Longshore jeremy@intentsolutions.io tags:

  • performance
  • database
  • monitoring compatibility: Designed for Claude Code

Metrics Aggregator

Aggregate and centralize performance metrics from applications, databases, caches, and infrastructure into Prometheus, StatsD, or CloudWatch with unified naming conventions.

Overview

This skill empowers Claude to streamline performance monitoring by aggregating metrics from diverse systems into a unified view. It simplifies the process of collecting, centralizing, and analyzing performance data, leading to improved insights and faster issue resolution.

How It Works

  1. Metrics Taxonomy Design: Claude assists in defining a clear and consistent naming convention for metrics across all systems.
  2. Aggregation Tool Selection: Claude helps select the appropriate metrics aggregation tool (e.g., Prometheus, StatsD, CloudWatch) based on the user's environment and requirements.
  3. Configuration and Integration: Claude guides the configuration of the chosen aggregation tool and its integration with various data sources.
  4. Dashboard and Alert Setup: Claude helps set up dashboards for visualizing metrics and defining alerts for critical performance indicators.

When to Use This Skill

This skill activates when you need to:

  • Centralize performance metrics from multiple applications and systems.
  • Design a consistent metrics naming convention.
  • Choose the right metrics aggregation tool for your needs.
  • Set up dashboards and alerts for performance monitoring.

Examples

Example 1: Centralizing Application and System Metrics

User request: "Aggregate application and system metrics into Prometheus."

The skill will:

  1. Guide the user in defining metrics for applications (e.g., request latency, error rates) and systems (e.g., CPU usage, memory utilization).
  2. Help configure Prometheus to scrape metrics from the application and system endpoints.

Example 2: Setting Up Alerts for Database Performance

User request: "Centralize database metrics and set up alerts for slow queries."

The skill will:

  1. Help the user define metrics for database performance (e.g., query execution time, connection pool usage).
  2. Guide the user in configuring the aggregation tool to collect these metrics from the database.
  3. Assist in setting up alerts in the aggregation tool to notify the user when query execution time exceeds a defined threshold.

Best Practices

  • Naming Conventions: Use a consistent and well-defined naming convention for all metrics to ensure clarity and ease of analysis.
  • Granularity: Choose an appropriate level of granularity for metrics to balance detail and storage requirements.
  • Retention Policies: Define retention policies for metrics to manage storage space and ensure data is available for historical analysis.

Integration

This skill integrates with other plugins that manage infrastructure, deploy applications, and monitor system health. For example, it can be used in conjunction with a deployment plugin to automatically configure metrics collection after a new application deployment.

Prerequisites

  • Access to metrics collection tools (Prometheus, StatsD, CloudWatch)
  • Network connectivity to metric sources
  • Metrics storage configuration in ${CLAUDE_SKILL_DIR}/metrics/
  • Understanding of metrics taxonomy

Instructions

  1. Design consistent metrics naming convention
  2. Select appropriate aggregation tool for environment
  3. Configure metric collection from all sources
  4. Set up centralized storage and retention policies
  5. Create dashboards for visualization
  6. Define alerts for critical metrics

Output

  • Metrics aggregation configuration files
  • Unified naming convention documentation
  • Dashboard definitions for key metrics
  • Alert rules for performance thresholds
  • Integration guides for metric sources

Error Handling

If metrics aggregation fails:

  • Verify network connectivity to sources
  • Check authentication credentials
  • Validate metrics format compatibility
  • Review storage capacity and retention
  • Ensure aggregation tool configuration

Resources

  • Prometheus aggregation documentation
  • StatsD protocol specifications
  • CloudWatch metrics API reference
  • Metrics naming best practices

Related Skills

View on GitHub
GitHub Stars2.8k
CategoryOperations
Updated6d ago
Forks404

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
aggregating-performance-metrics — Claude Code Skill: Install & Safety Check | SkillAgent