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API Rate Limiting and Throttling Patterns
lokalise-rate-limits
jeremylongshore/claude-code-plugins-plus-skills
74
This skill provides robust patterns for handling API rate limits and throttling, specifically demonstrated using the Lokalise API. It teaches how to implement request queuing (p-queue) with required spacing, automatic exponential backoff with jitter upon receiving 429 errors, and how to proactively monitor and utilize rate limit headers (X-RateLimit-*). Ideal for optimizing high-throughput, reliable API interactions and bulk operations.
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Robust API Rate Limit Handling
maintainx-rate-limits
jeremylongshore/claude-code-plugins-plus-skills
442
A comprehensive client library pattern for interacting with rate-limited APIs. This solution implements exponential backoff, robust retry logic (handling 429/5xx errors), concurrent request queuing, and cursor-based pagination. It ensures high throughput and reliable data fetching without exceeding API limits.
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MaintainX API Integration Patterns
maintainx-sdk-patterns
jeremylongshore/claude-code-plugins-plus-skills
233
This guide provides production-grade patterns for building robust integrations with the MaintainX REST API. It covers essential techniques such as creating type-safe clients using TypeScript, implementing reliable cursor-based pagination, handling API rate limits with exponential backoff retry logic, and performing efficient batch operations. Ideal for developers building scalable, resilient API wrappers.
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Microsoft Teams Automation Toolkit
microsoft-teams-automation
davepoon/buildwithclaude
219
Automate Microsoft Teams operations through Composio via Rube MCP, covering channel/chat messaging, meetings, team/channel management, and message search workflows with required setups and backoff guidance.
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Mistral AI Rate Limiting And Backoff
mistral-rate-limits
jeremylongshore/claude-code-plugins-plus-skills
196
Provides comprehensive strategies for managing API rate limits (RPM/TPM) when integrating with Mistral AI. This guide demonstrates implementing token-aware rate limiters, exponential backoff, and robust retry mechanisms using `Retry-After` headers, ensuring high throughput and stable application performance for large-scale LLM applications.
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Mistral AI SDK Best Practices
mistral-sdk-patterns
jeremylongshore/claude-code-plugins-plus-skills
412
This guide provides production-ready patterns for integrating the Mistral AI SDK in both TypeScript and Python. It covers essential best practices such as singleton client management, handling structured JSON output, implementing streaming responses, concurrent asynchronous processing, and robust error handling with exponential backoff. Use this when establishing team coding standards or refactoring Mistral API usage.
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OpenEvidence API Rate Limit Strategies
openevidence-rate-limits
jeremylongshore/claude-code-plugins-plus-skills
185
This guide demonstrates how to implement robust rate limiting and retry logic for critical healthcare APIs using a token bucket pattern. It covers managing specific service limits (e.g., clinical queries, evidence synthesis) and implementing strategies like exponential backoff and batch processing to ensure graceful degradation and reliable data retrieval in clinical decision support systems.
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Implementing Robust API Rate Limiting Strategies
openrouter-rate-limits
jeremylongshore/claude-code-plugins-plus-skills
475
A comprehensive guide on handling API rate limits and throttling errors (429) when building high-throughput systems, particularly for LLM APIs like OpenRouter. This skill covers best practices, including using exponential backoff, implementing custom client-side rate limiters (Token Bucket), and managing concurrent requests for stable, reliable performance.
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Perplexity API Rate Limiting Strategies
perplexity-rate-limits
jeremylongshore/claude-code-plugins-plus-skills
398
A comprehensive guide and implementation examples for handling API rate limits (HTTP 429) when interacting with the Perplexity Sonar API. This resource provides multiple robust techniques, including exponential backoff with jitter, queue-based rate limiting, and custom Token Bucket implementation, ensuring reliable and high-throughput API calls for developers using TypeScript and Python.
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Perplexity SDK Patterns For AI Integration
perplexity-sdk-patterns
jeremylongshore/claude-code-plugins-plus-skills
52
This skill provides production-ready patterns for integrating with the Perplexity Sonar API in both TypeScript and Python. It covers best practices for creating robust wrappers around the standard OpenAI client, including dedicated handling for citations, search results, and related questions. It also includes essential utilities like implementing exponential backoff for reliable retries. Use this when setting up complex search-augmented generation workflows or standardizing team coding practices around Perplexity usage.
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Handling PostHog API Rate Limits
posthog-rate-limits
jeremylongshore/claude-code-plugins-plus-skills
131
This guide provides robust, production-ready strategies for integrating with the PostHog API. It teaches developers how to handle API rate limits (429 errors) gracefully using exponential backoff and retry logic. Furthermore, it covers implementing request queuing for burst protection, optimizing with data caching, and monitoring rate limit headers, ensuring stable and reliable data ingestion regardless of traffic volume.
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Managing Replit Resource Limits And Quotas
replit-rate-limits
jeremylongshore/claude-code-plugins-plus-skills
392
This guide teaches developers how to implement robust rate limiting and handle resource quotas for applications hosted on Replit. It covers monitoring Key-Value database usage, implementing middleware for API rate limiting (using Express), and utilizing exponential backoff and request queuing patterns to ensure application stability and prevent service degradation when hitting resource limits (e.g., 429 errors).
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