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403 Repos

Awesome GitHub RepositoriesIntegration and Deployment

Explore 403 awesome GitHub repositories matching artificial intelligence & ml · Integration and Deployment. Refine with filters or upvote what's useful.

Awesome Integration and Deployment GitHub Repositories

Finde die besten Repos mit KI.Wir suchen mit KI nach den am besten passenden Repositories.
  • codecrafters-io/build-your-own-xAvatar von codecrafters-io

    codecrafters-io/build-your-own-x

    516,240Auf GitHub ansehen↗

    Dieses Projekt bietet ein umfassendes Framework zum Erstellen, Verwalten und Ausführen von Programmieraufgaben. Es enthält standardisierte Systeme für die Erstellung von Lehrmaterialien, die Definition von Testfällen und die Strukturierung der Dokumentation, um konsistente Lernergebnisse zu gewährleisten. Die Plattform unterstützt eine Vielzahl von Programmiersprachen durch dedizierte Ausführungsumgebungen, die Kompilierung, Abhängigkeitsmanagement und automatisierte Tests übernehmen. Die Infrastruktur ermöglicht sowohl lokale als auch Remote-Entwicklungs-Workflows und bietet Befehlszeilen-Tools zum Testen von Code ohne die Notwendigkeit von Versionskontroll-Commits. Sie verfügt über einen automatisierten Orchestrierungs-Lebenszyklus für containerisierte Testausführungen, ergänzt durch Diagnosetools zum Debuggen von Netzwerkprotokollen und zur Überwachung der Programmausgabe. Zusätzlich enthält das Projekt Wartungs-Workflows für die Verwaltung der Repository-Historie sowie Integrationstools zur Synchronisierung von Daten mit externen Versionskontroll-Hosts.

    Enables automated one-way synchronization of repository state updates to connected external version control hosts.

    Markdownawesome-listfreeprogramming
    Auf GitHub ansehen↗516,240
  • openclaw/openclawAvatar von openclaw

    openclaw/openclaw

    380,031Auf GitHub ansehen↗

    Openclaw ist eine Plattform zur Verwaltung von Agenten-Ausführungsumgebungen, die die Infrastruktur zur Steuerung von Agenten-Lebenszyklen, Sitzungszuständen und Arbeitsbereich-Persistenz bereitstellt. Sie verfügt über ein zentrales Gateway, das Modell-Schleifen, Tool-Aufrufe und Streaming-Ereignisse verarbeitet, während es gleichzeitig Multi-Agenten-Routing und persistentes Speichermanagement unterstützt. Das System ist darauf ausgelegt, Tool-Ausführungssignaturen zu normalisieren und eine standardisierte Schnittstelle für die Kompatibilität zwischen verschiedenen Anbietern zu bieten. Die Plattform umfasst umfangreiche Entwickler-Tools, wie eine Befehlszeilenschnittstelle für die Arbeitsbereichsverwaltung, diagnostische Protokollierung und eine Plugin-Architektur, die die Registrierung benutzerdefinierter Tools und Funktionen ermöglicht. Sie unterstützt automatisierte Workflows durch ereignisgesteuerte Hooks, Aufgabenplanung und die Integration mit externen Diensten. Die Sicherheit wird durch Ausführungsrichtlinien, Anmeldeinformations-Portabilität und Genehmigungs-Workflows für Agentenaktionen verwaltet. Die Bereitstellung wird durch automatisierte Infrastruktur-Installer und containerisierte Gateway-Helfer unterstützt, mit integrierten Dienstprogrammen für Backups und Konfigurationsmanagement. Das System bietet ein strukturiertes Format für die Orchestrierung mehrstufiger Workflows und enthält spezialisierte Tools für Browser-Automatisierung und strukturiertes Code-Patching.

    Allocates persistent directory structures to serve as long-term memory and file storage for agent operations.

    TypeScriptaiassistantcrustacean
    Auf GitHub ansehen↗380,031
  • affaan-m/eccAvatar von affaan-m

    affaan-m/ECC

    221,981Auf GitHub ansehen↗

    ECC ist ein LLM-Agenten-Orchestrierungs-Framework und eine plattformübergreifende KI-Tool-Suite, die darauf ausgelegt ist, Multi-Modell-Workflows zu koordinieren. Es bietet ein System zur Verwaltung spezialisierter Agentenrollen, wiederverwendbarer Fähigkeiten und strukturierter Planung, um komplexe Softwareentwicklungsaufgaben über verschiedene KI-gestützte Code-Editoren hinweg auszuführen. Das Projekt zeichnet sich als Model Context Protocol Manager aus und bietet eine Konfigurationsschicht zur Integration externer Server und zur Prüfung der Tool-Ausführung. Es implementiert zudem eine agentische Sicherheits-Sandbox, die den Zugriff auf sensible Dateien einschränkt und auf Geheimnislecks scannt, um autonome Workflows zu sichern. Das Framework deckt breite Fähigkeitsbereiche ab, einschließlich der Automatisierung von KI-Coding-Workflows mit Leitplanken für testgetriebene Entwicklung, Modellkostenoptimierung durch intelligentes Routing und zustandsisoliertes Speichermanagement. Es enthält zudem Tools zur Durchsetzung sprachspezifischer Codierungsstandards und zur Verwaltung von Agentenverhalten über verschiedene integrierte Entwicklungsumgebungen hinweg. Das System wird über eine Befehlszeilenschnittstelle verwaltet, die die Tool-Installation, Konfigurationsreparatur und die Bereitstellung von Tool-Presets handhabt.

    Coordinates multiple agents by assigning specific roles and operating procedures to execute complex workflows.

    JavaScript
    Auf GitHub ansehen↗221,981
  • significant-gravitas/auto-gptAvatar von Significant-Gravitas

    Significant-Gravitas/Auto-GPT

    184,987Auf GitHub ansehen↗

    Auto-GPT is an autonomous agent framework that uses large language models to decompose complex goals and execute multi-step tasks without human intervention. It functions as a workflow automation tool that chains language model tasks and manages memory to achieve specific objectives. The project features a visual agent designer that allows users to define behaviors and goals by connecting functional blocks through a graphical interface. It employs a vector database memory system to recall information across different sessions and a sliding-window buffer for immediate short-term context. The

    Integrates core agent logic with external functional plugins for web and file system interactions.

    Python
    Auf GitHub ansehen↗184,987
  • torantulino/auto-gptAvatar von Torantulino

    Torantulino/Auto-GPT

    184,986Auf GitHub ansehen↗

    Auto-GPT is an autonomous agent framework designed for creating and deploying AI agents that use large language models to plan and execute complex goals independently. The system provides a comprehensive environment for managing the entire agent lifecycle, from initial design and testing to live production deployment. The project features a low-code workflow designer that allows users to define agent behaviors by connecting functional blocks in a visual interface. It includes an agent marketplace for discovering and deploying pre-configured agent templates and a standardized evaluation tool t

    Provides a centralized marketplace for discovering and launching pre-configured autonomous agents.

    Python
    Auf GitHub ansehen↗184,986
  • significant-gravitas/autogptAvatar von Significant-Gravitas

    Significant-Gravitas/AutoGPT

    184,973Auf GitHub ansehen↗

    AutoGPT is an orchestration platform designed for building, managing, and deploying autonomous agents. It provides a visual canvas-based environment where users can assemble agents by connecting modular blocks that represent actions, data flows, and conditional logic. The platform supports the entire agent lifecycle, including task scheduling, execution monitoring, and configuration management, while offering a marketplace for discovering and sharing community-built workflows. The project includes a legacy framework for command-line agent execution and an extensible component system for devel

    Standardizes message injection interfaces to maintain context within agent prompts.

    Pythonaiartificial-intelligenceautonomous-agents
    Auf GitHub ansehen↗184,973
  • anthropics/skillsAvatar von anthropics

    anthropics/skills

    151,506Auf GitHub ansehen↗

    This project provides a standardized framework for extending the functional range of artificial intelligence agents through a registry of modular, declarative instructions. It enables agentic workflow automation by allowing developers to define task-specific behaviors and operational constraints that guide how agents interact with external tools and execute multi-step processes. The system distinguishes itself through a directory-based discovery model and a plugin-registry architecture that facilitates the distribution of specialized workflows. By utilizing a schema-driven specification that

    Establishes a uniform schema for defining agent behaviors and operational constraints when interacting with external tools.

    Pythonagent-skills
    Auf GitHub ansehen↗151,506
  • x1xhlol/system-prompts-and-models-of-ai-toolsAvatar von x1xhlol

    x1xhlol/system-prompts-and-models-of-ai-tools

    141,061Auf GitHub ansehen↗

    This project is a community-driven knowledgebase and registry for AI agent configurations. It serves as a centralized repository for system prompts, environment settings, and integration strategies designed to standardize the behavior of various AI-assisted development tools. By capturing these configurations in a structured format, the project enables developers to maintain consistent AI agent performance across different workstations and environments. The repository distinguishes itself through a hierarchical, version-controlled architecture that treats prompt engineering patterns as portab

    Organizes version-controlled system prompts and integration parameters specifically for Claude Code environments.

    aiboltcluely
    Auf GitHub ansehen↗141,061
  • langchain-ai/langchainAvatar von langchain-ai

    langchain-ai/langchain

    139,458Auf GitHub ansehen↗

    LangChain is an orchestration framework designed for building, managing, and deploying applications powered by large language models. It provides a unified integration layer that normalizes disparate model provider APIs into a consistent set of primitives, enabling developers to build complex, multi-step AI workflows that manage state, memory, and tool execution. The project distinguishes itself through a durable execution runtime that maintains persistent state across long-running processes by checkpointing progress to external storage. It models agent workflows as directed graphs, allowing

    Maintains persistent state across long-running processes by automatically checkpointing execution progress to external storage.

    Pythonagentsaiai-agents
    Auf GitHub ansehen↗139,458
  • firecrawl/firecrawlAvatar von firecrawl

    firecrawl/firecrawl

    133,479Auf GitHub ansehen↗

    Firecrawl is a web data extraction platform designed to convert unstructured web content into clean, LLM-ready formats like markdown or JSON. It functions as an autonomous web crawler and scraper, capable of mapping entire domains, performing recursive navigation, and executing complex data gathering tasks. By leveraging headless browser orchestration, the system handles dynamic, JavaScript-heavy pages to ensure comprehensive data capture. The platform distinguishes itself through its focus on agentic workflows, providing a programmatic interface that allows autonomous agents to perform live

    Equips agents with the capability to perform live web searches and interact with pages for real-time problem solving.

    TypeScriptaiai-agentsai-crawler
    Auf GitHub ansehen↗133,479
  • mattpocock/skillsAvatar von mattpocock

    mattpocock/skills

    131,422Auf GitHub ansehen↗

    This project is an AI agent workflow framework and development toolkit designed for AI-driven software engineering. It provides a system of modular instructions, prompt libraries, and standardized routines to orchestrate complex engineering sequences and automate the decomposition of plans into technical tasks. The system differentiates itself through advanced context management and prompt engineering, using state compression and handoff documents to preserve conversation history between different AI sessions. It employs a structured library of prompt skills and high-signal trigger words to e

    Creates modular and standardized system prompt structures to ensure predictable agent behaviors.

    Shell
    Auf GitHub ansehen↗131,422
  • microsoft/generative-ai-for-beginnersAvatar von microsoft

    microsoft/generative-ai-for-beginners

    112,045Auf GitHub ansehen↗

    This project is a comprehensive, open-source educational curriculum designed to guide developers through the mastery of generative artificial intelligence. It provides a structured learning path that covers foundational concepts, prompt engineering, and the practical application of large language models. The repository serves as a central hub for skill acquisition, offering sequential modules that progress from basic model mechanics to advanced architectural patterns. The curriculum distinguishes itself by focusing on the end-to-end lifecycle of intelligent software, including the implementat

    Demonstrates the process of authenticating and executing initial API requests against managed cloud-based artificial intelligence providers.

    Jupyter Notebookaiazurechatgpt
    Auf GitHub ansehen↗112,045
  • garrytan/gstackAvatar von garrytan

    garrytan/gstack

    110,596Auf GitHub ansehen↗

    gstack is an AI agent framework and development workflow system designed to automate the software development lifecycle. It coordinates specialized AI personas to manage tasks across product design, engineering management, and quality assurance, transforming product intent into technical specifications and final releases. The project is distinguished by its deep integration of headless browser automation and semantic code memory. It utilizes a persistent Chromium daemon for web scraping and visual auditing, and implements a searchable knowledge base that logs architectural decisions and repos

    Coordinates multiple agents by assigning specialized roles for design, engineering management, and quality assurance.

    TypeScript
    Auf GitHub ansehen↗110,596
  • google-gemini/gemini-cliAvatar von google-gemini

    google-gemini/gemini-cli

    105,341Auf GitHub ansehen↗

    This project provides a command-line interface for managing autonomous agent workflows, task orchestration, and system-level automation. It includes a comprehensive framework for defining agent skills, managing persistent memory, and delegating tasks to specialized subagents. Users can configure complex planning modes, execute shell commands with safety constraints, and integrate external tools through standardized protocols. The platform supports non-interactive execution via a headless mode and provides an event-driven hook framework for custom lifecycle automation. It features centralized

    Session management maintains persistent state and interaction history, allowing users to resume workflows or rewind to specific points in time.

    TypeScriptaiai-agentscli
    Auf GitHub ansehen↗105,341
  • browser-use/browser-useAvatar von browser-use

    browser-use/browser-use

    100,229Auf GitHub ansehen↗

    Browser-use is a framework for building autonomous agents that navigate, interact with, and extract data from web interfaces using natural language instructions. By acting as an orchestration layer between large language models and browser automation protocols, it enables the execution of complex, multi-step workflows without relying on brittle selectors. The system functions as a headless browser controller, providing a programmatic interface to manage browser instances and execute granular interactions. The project distinguishes itself through its ability to translate high-level intent into

    Orchestrates iterative task execution by processing visual page context and generating actionable commands through language models.

    Pythonai-agentsai-toolsbrowser-automation
    Auf GitHub ansehen↗100,229
  • ant-design/ant-designAvatar von ant-design

    ant-design/ant-design

    98,362Auf GitHub ansehen↗

    Ant Design is an enterprise-grade component library and design system framework built for developing complex, data-heavy web applications. It provides a comprehensive collection of pre-built, state-driven interface elements that map data properties to rendered components, ensuring consistent interaction patterns and visual language across large-scale projects. The library distinguishes itself through a robust styling architecture that utilizes design tokens and hierarchical configuration providers to propagate global settings like themes, locale, and layout direction. By employing component-l

    Defines standardized formats for embedding design system knowledge into AI-powered coding assistants and development environments.

    TypeScriptant-designantddesign-systems
    Auf GitHub ansehen↗98,362
  • florinpop17/app-ideasAvatar von florinpop17

    florinpop17/app-ideas

    95,036Auf GitHub ansehen↗

    App-ideas is a development platform that integrates autonomous AI agents into local environments to orchestrate code review, automated fix application, and workflow management. It functions as a command-line interface that connects external AI assistants to your codebase, enabling iterative development cycles through plugin-based integration and natural language triggers. The platform distinguishes itself through a robust static analysis engine that traverses syntax trees to enforce structural coding standards and identify violations. Users can define custom review rules, architectural prefer

    Standardizes interfaces that connect external AI assistants to local development environments for automated remediation.

    applicationscodingcodingchallenges
    Auf GitHub ansehen↗95,036
  • punkpeye/awesome-mcp-serversAvatar von punkpeye

    punkpeye/awesome-mcp-servers

    89,264Auf GitHub ansehen↗

    This project serves as a centralized directory and interoperability hub for the Model Context Protocol, providing a curated collection of standardized service connectors that bridge artificial intelligence models with external software, databases, and APIs. It facilitates the integration of AI agents with diverse ecosystems by offering a registry of machine-readable interface definitions that enable dynamic tool discovery and structured context injection. The directory distinguishes itself by focusing on the protocol-based interoperability required for autonomous AI agents to interact with he

    Implements standardized interface definitions allowing agents to dynamically identify and invoke external functions at runtime.

    aimcp
    Auf GitHub ansehen↗89,264
  • karpathy/autoresearchAvatar von karpathy

    karpathy/autoresearch

    87,119Auf GitHub ansehen↗

    Autoresearch is an autonomous machine learning research agent and architecture search framework. It employs a closed-loop system to programmatically rewrite training and architecture source code to discover optimal language model configurations. The system iteratively modifies code and evaluates performance metrics to improve model quality based on a target objective. It optimizes model performance and training efficiency by tracking validation bits per byte, which allows for a fair comparison of architectural changes independently of vocabulary size. The framework manages the full training

    Employs AI agents to programmatically read and edit training source code to optimize model configurations.

    Python
    Auf GitHub ansehen↗87,119
  • infiniflow/ragflowAvatar von infiniflow

    infiniflow/ragflow

    82,922Auf GitHub ansehen↗

    This project is a comprehensive retrieval-augmented generation platform designed for building, managing, and deploying knowledge-based AI applications. It provides a unified environment for organizing datasets, configuring conversational chat assistants, and developing autonomous agents that execute multi-step reasoning workflows. By integrating document intelligence with advanced retrieval pipelines, the platform enables the creation of grounded, verifiable responses supported by traceable citations. The platform distinguishes itself through deep document understanding and sophisticated know

    Handles the lifecycle of autonomous agents through dedicated API endpoints for listing, managing, and interacting with system entities.

    Pythonagentagenticagentic-ai
    Auf GitHub ansehen↗82,922
Vorherige123456…21Nächste
  1. Home
  2. Artificial Intelligence & ML
  3. Agentic Systems Frameworks
  4. Integration and Deployment

Unter-Tags erkunden

  • AI Agent Architectures2 Sub-TagsStructural patterns that decouple agent logic from service implementations to facilitate independent scaling and modular system design.
  • AI Agent Tooling18 Sub-TagsExternal tools, interfaces, and protocols that extend the functional capabilities of autonomous agents through standardized access to external systems.
  • AI Integration Guides1 Sub-TagInstructional resources for connecting external cloud-based AI services into existing software architectures.
  • AI Integration Workflows1 Sub-TagAutomated processes for synchronizing and managing data between cloud storage platforms and AI services.
  • Agent Configuration Tools14 Sub-TagsTools for defining and managing agent metadata, system prompts, and configuration settings.
  • Agent Development1 Sub-TagPlatforms and interfaces that enable users to build and customize AI agents with specific skills and operational capabilities.
  • Agent Ecosystems3 Sub-TagsPlatforms and registries for discovering, sharing, and integrating community-built agents, standardized service connectors, and specialized skills.
  • Agent Frameworks8 Sub-TagsSoftware structures providing abstractions, runtimes, and configuration standards for building, managing, and executing language model-powered applications.
  • Agentic Domains3 Sub-TagsSpecialized operational environments where AI agents are designed to perform domain-specific tasks like automated web navigation.
  • Business Integrations1 Sub-TagSoftware solutions that integrate artificial intelligence capabilities into commercial and e-commerce business operations.
  • Distributed Agent DevelopmentTools for packaging and transmitting agents between different machines to enable cross-device development. **Distinct from Agent Development:** Focuses on the transmission and packaging for cross-device dev, not the platform for building agent skills.
  • Infrastructure and Runtime Environments2 Sub-TagsCovers the underlying server-side execution environments, workspace containers, and deployment infrastructure for hosting agents.