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Back to googlecloudplatform/generative-ai

Open-source alternatives to Generative Ai

30 open-source projects similar to googlecloudplatform/generative-ai, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best Generative Ai alternative.

  • googleapis/python-genaiالصورة الرمزية لـ googleapis

    googleapis/python-genai

    3,819عرض على GitHub↗

    This project is a Python software development kit and framework for building applications that integrate with large language models. It serves as a multimodal content generator and vector embedding library, enabling the production and editing of text, images, audio, and video. The toolkit provides specialized capabilities for adapting base models through supervised and reinforcement training. It further distinguishes itself by offering tools for orchestrating complex workflows, including stateful chat sessions, the enforcement of structured output via schemas, and the integration of external

    Python
    عرض على GitHub↗3,819
  • comet-ml/opikالصورة الرمزية لـ comet-ml

    comet-ml/opik

    17,787عرض على GitHub↗

    Opik is an observability and evaluation platform designed for generative AI applications and agentic workflows. It provides a centralized environment for tracing execution flows, managing prompt templates, and monitoring production performance, allowing teams to gain visibility into complex model interactions and tool usage without requiring manual application code changes. The platform distinguishes itself through its integrated approach to the AI development lifecycle, combining distributed trace instrumentation with automated evaluation frameworks. It supports model-as-a-judge scoring, syn

    Pythonevaluationhacktoberfesthacktoberfest2025
    عرض على GitHub↗17,787
  • datawhalechina/prompt-engineering-for-developersالصورة الرمزية لـ datawhalechina

    datawhalechina/prompt-engineering-for-developers

    24,267عرض على GitHub↗

    This project is a technical curriculum and development guide focused on large language model prompt engineering, fine-tuning, and the creation of retrieval augmented generation applications. It serves as a comprehensive resource for developers to master crafting precise instructions and textual patterns to improve the quality and predictability of model outputs. The material covers the end-to-end workflow of adapting open-source models to specific datasets and integrating language models with vector databases to generate responses based on private information. It also provides a systematic ap

    Jupyter Notebook
    عرض على GitHub↗24,267

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  • sgl-project/sglangالصورة الرمزية لـ sgl-project

    sgl-project/sglang

    29,079عرض على GitHub↗

    Sglang is a high-performance inference engine and serving system designed for large language and multimodal models. It provides a programmable interface for orchestrating complex generation workflows, enabling developers to coordinate multi-turn dialogues, tool invocations, and reasoning chains through a domain-specific language. The platform is built to support production-scale deployments, offering an OpenAI-compatible API that allows for integration with existing application ecosystems. The system distinguishes itself through a disaggregated architecture that separates compute-intensive pr

    Pythonattentionblackwellcuda
    عرض على GitHub↗29,079
  • internlm/opencompassالصورة الرمزية لـ InternLM

    InternLM/opencompass

    7,096عرض على GitHub↗

    OpenCompass is a comprehensive evaluation platform, benchmarking suite, and distributed model evaluator designed to measure the performance and accuracy of large language models. It provides a framework for benchmarking both open-source and API-based models against diverse datasets using standardized metrics and reproducible pipelines. The project features an automated judging framework that uses language models as judges to score and verify the quality of generated text. It includes a performance leaderboard system for comparing the relative capabilities of various models across industry-sta

    Python
    عرض على GitHub↗7,096
  • arize-ai/phoenixالصورة الرمزية لـ Arize-ai

    Arize-ai/phoenix

    8,605عرض على GitHub↗

    Arize Phoenix is an LLM observability platform and evaluation framework designed to capture execution traces and monitor large language model applications. It serves as a prompt management system for versioning and testing templates, and as a self-hosted AI operations infrastructure for managing telemetry and experiments. The platform differentiates itself through a specialized embedding visualization tool used to detect data drift and optimize vector search. It provides a comprehensive evaluation suite that utilizes judge-based evaluators and ground-truth datasets to score model outputs, and

    Jupyter Notebookagentsai-monitoringai-observability
    عرض على GitHub↗8,605
  • alirezadir/machine-learning-interviewsالصورة الرمزية لـ alirezadir

    alirezadir/Machine-Learning-Interviews

    8,455عرض على GitHub↗

    This project is a comprehensive machine learning interview guide and technical study resource designed for individuals preparing for machine learning and AI engineering roles. It provides a collection of materials and practice problems covering core algorithms, theoretical fundamentals, and the implementation of neural network architectures. The resource serves as a technical reference for generative AI development, focusing on the design and optimization of large language models and diffusion systems. It includes frameworks for system design, covering the architecture of production machine l

    Jupyter Notebookagenticaiai-agents
    عرض على GitHub↗8,455
  • nvidia/isaac-gr00tالصورة الرمزية لـ NVIDIA

    NVIDIA/Isaac-GR00T

    6,222عرض على GitHub↗
    Jupyter Notebook
    عرض على GitHub↗6,222
  • modstart-lib/aigcpanelالصورة الرمزية لـ modstart-lib

    modstart-lib/aigcpanel

    4,576عرض على GitHub↗

    Aigcpanel is a visual workflow automation tool and model lifecycle manager designed for generative AI media pipelines. It provides a unified interface to install, launch, and configure both local and remote AI model endpoints, acting as an orchestration platform for large language models and AI tools. The system features a drag-and-drop node editor for chaining AI models and scripts into automated processing pipelines. It distinguishes itself with a breakpoint-aware execution model that allows users to pause and resume long media tasks from specific points in the workflow. Additionally, it in

    TypeScriptaiaigccosyvoice
    عرض على GitHub↗4,576
  • agenta-ai/agentaالصورة الرمزية لـ Agenta-AI

    Agenta-AI/agenta

    3,860عرض على GitHub↗

    Agenta is a Prompt Ops lifecycle manager and prompt management platform that decouples prompt engineering from application code. It serves as a centralized system for developing, versioning, and deploying prompt templates and model configurations across different environments. The platform functions as an AI agent orchestrator with a visual interface for building agent workflows and connecting models to external tools. It further acts as an evaluation framework and observability tool, utilizing OpenTelemetry to capture execution traces, monitor latency, and track token costs. The system cove

    TypeScriptagentsevaluationllm-as-a-judge
    عرض على GitHub↗3,860
  • johnsnowlabs/spark-nlpالصورة الرمزية لـ JohnSnowLabs

    JohnSnowLabs/spark-nlp

    4,135عرض على GitHub↗

    Spark NLP is a toolkit for scalable text analysis and machine learning built on the Apache Spark distributed computing framework. It provides a multimodal machine learning framework and a distributed pipeline system for sequencing annotators to process large-scale linguistic data. The library includes a transformer text processor for generating contextual vector embeddings and a dedicated inference engine for managing large language models. The project distinguishes itself through its ability to process heterogeneous data types, including text, audio, and images, within a unified vision-langu

    Scala
    عرض على GitHub↗4,135
  • oumi-ai/oumiالصورة الرمزية لـ oumi-ai

    oumi-ai/oumi

    8,858عرض على GitHub↗

    Oumi is a comprehensive large language model development platform designed for synthesizing data, fine-tuning models, and running performance evaluations. It serves as a unified environment for the entire model lifecycle, encompassing a training and fine-tuning suite, an evaluation framework, and tools for synthetic data generation and model distillation. The platform is distinguished by its iterative, failure-driven synthesis approach, which analyzes model weaknesses during evaluation to generate targeted training data. It utilizes an LLM-based judge framework to programmatically score respo

    Pythondpoevaluationfine-tuning
    عرض على GitHub↗8,858
  • lianjiatech/belleالصورة الرمزية لـ LianjiaTech

    LianjiaTech/BELLE

    8,273عرض على GitHub↗

    BELLE is a specialized implementation of Chinese conversational large language models, encompassing a full instruction tuning framework. It provides a pipeline for training, evaluating, and deploying models optimized for natural language understanding and dialogue tasks in the Chinese language. The project is distinguished by its integrated approach to model refinement, combining the curation of multi-million entry instruction datasets with a distributed training pipeline. This pipeline supports both full fine-tuning and low-rank adaptation to optimize conversational performance. The system

    HTMLbloomchinese-nlpgpt-evaluation
    عرض على GitHub↗8,273
  • vibrantlabsai/ragasالصورة الرمزية لـ vibrantlabsai

    vibrantlabsai/ragas

    12,659عرض على GitHub↗

    Ragas is an evaluation framework designed to measure the performance of retrieval-augmented generation pipelines and autonomous agent workflows. It provides a comprehensive suite of tools for benchmarking system outputs, utilizing language models as automated judges to score performance against defined rubrics and reference data. By standardizing inputs, retrieved contexts, and generated responses into a unified schema, the project enables consistent analysis across complex AI applications. The framework distinguishes itself through its ability to generate synthetic test datasets from existin

    Pythonevaluationllmllmops
    عرض على GitHub↗12,659
  • openai/evalsالصورة الرمزية لـ openai

    openai/evals

    18,702عرض على GitHub↗

    Evals is a framework designed for automating, managing, and executing repeatable benchmarking suites to analyze the quality and performance of language models. It provides a platform for running standardized tests to measure model accuracy and track behavioral changes over time. The system distinguishes itself through a modular architecture that uses a standardized adapter layer to normalize inputs and outputs, allowing different models to be swapped and tested interchangeably. It supports the creation of custom benchmarks using proprietary data, enabling quality assurance on sensitive tasks

    Python
    عرض على GitHub↗18,702
  • dragen1860/tensorflow-2.x-tutorialsالصورة الرمزية لـ dragen1860

    dragen1860/TensorFlow-2.x-Tutorials

    6,351عرض على GitHub↗

    This project is a collection of TensorFlow 2.x machine learning tutorials and practical code examples. It serves as a deep learning implementation guide for constructing diverse neural network architectures, including convolutional, recurrent, and generative networks. The repository provides templates and examples for several specialized domains, including computer vision for image classification and object detection, natural language processing for text generation and language understanding, and generative AI for synthesizing data using adversarial networks and autoencoders. It also includes

    Jupyter Notebookartificial-intelligencecomputer-visiondeep-learning
    عرض على GitHub↗6,351
  • autogluon/autogluonالصورة الرمزية لـ autogluon

    autogluon/autogluon

    9,997عرض على GitHub↗

    AutoGluon is an automated machine learning framework and multimodal library designed to automate the end-to-end pipeline from data preprocessing to high-accuracy model training and validation. It functions as an automated model trainer for tabular, image, text, and time series data, as well as a tool for time series forecasting and foundation model finetuning. The project is distinguished by its ability to jointly process and fuse different data types, allowing for the construction of multimodal neural networks that integrate images, text, and structured tables. It supports zero-shot inferenc

    Pythonautogluonautomated-machine-learningautoml
    عرض على GitHub↗9,997
  • microsoft/phicookbookالصورة الرمزية لـ microsoft

    microsoft/PhiCookBook

    3,755عرض على GitHub↗

    PhiCookBook is a technical guide and implementation framework for integrating small language models into applications. It provides instructions for deploying these lightweight models to perform reasoning, coding, and math tasks across various hardware environments and serving platforms. The project functions as a tutorial for developing intelligent AI applications by chaining prompts and code into executable sequences. It includes a framework for evaluating model behavior and calculating quality metrics to verify the accuracy and reliability of these workflows. The repository covers a broad

    Jupyter Notebookcookbooklanguage-modelphi-4
    عرض على GitHub↗3,755
  • evidentlyai/evidentlyالصورة الرمزية لـ evidentlyai

    evidentlyai/evidently

    7,137عرض على GitHub↗

    Evidently is an AI observability platform and evaluation framework designed to quantify the performance of machine learning models and large language models. It functions as a monitoring tool for detecting data drift and quality degradation in tabular datasets, while providing a specialized analyzer for the faithfulness and correctness of retrieval augmented generation systems. The project distinguishes itself through an evaluation framework that utilizes judge models and custom rubrics to score language model outputs. It includes tools for iterative prompt optimization and the generation of

    Jupyter Notebookdata-driftdata-qualitydata-science
    عرض على GitHub↗7,137
  • shishirpatil/gorillaالصورة الرمزية لـ ShishirPatil

    ShishirPatil/gorilla

    12,908عرض على GitHub↗

    Gorilla is a foundational infrastructure framework for large language model function calling. It provides a system for training, evaluating, and executing the translation of natural language instructions into accurate API calls and executable code. The project integrates a structured API documentation index, a fine-tuning pipeline for model adaptation, and a secure sandboxed action runtime for executing model-generated commands. The framework distinguishes itself through a specialized evaluation benchmark suite that measures the accuracy, cost, and latency of function calls. It includes tools

    Python
    عرض على GitHub↗12,908
  • openai/openai-nodeالصورة الرمزية لـ openai

    openai/openai-node

    10,643عرض على GitHub↗

    This project is a comprehensive Node.js software development kit designed for integrating large language models into applications. It serves as a foundational client for interacting with REST and WebSocket services, enabling developers to implement chat functionality, multimodal content generation, and autonomous agent orchestration. The library provides a structured framework for defining executable tools and enforcing JSON schemas, ensuring that model outputs remain programmatically compatible with downstream systems. The SDK distinguishes itself through its robust request orchestration and

    TypeScriptnodejsopenaitypescript
    عرض على GitHub↗10,643
  • chiphuyen/aie-bookالصورة الرمزية لـ chiphuyen

    chiphuyen/aie-book

    13,779عرض على GitHub↗

    This project serves as a comprehensive educational resource and technical handbook for engineers building applications powered by large language models. It provides a structured framework for mastering the principles of artificial intelligence engineering, covering the full lifecycle of model development from initial design to production deployment. The repository distinguishes itself by offering a deep dive into the practical implementation of advanced design patterns, including retrieval-augmented generation, agentic tool orchestration, and parameter-efficient model adaptation. It emphasize

    Jupyter Notebook
    عرض على GitHub↗13,779
  • mlflow/mlflowالصورة الرمزية لـ mlflow

    mlflow/mlflow

    26,554عرض على GitHub↗
    Pythonagentopsagentsai
    عرض على GitHub↗26,554
  • langchain-ai/deepagentsالصورة الرمزية لـ langchain-ai

    langchain-ai/deepagents

    25,006عرض على GitHub↗

    Deepagents is an LLM agent orchestration platform and stateful application server designed for deploying and managing AI agents built with computational graphs. It provides a containerized runtime environment that handles agent execution, state persistence, and the versioning of AI assistants. The platform distinguishes itself through deep integration with the Model Context Protocol, allowing agents to function as servers that expose tools and capabilities to external clients. It features a sophisticated observability suite for capturing execution traces, performing LLM-based evaluations agai

    Pythonagentsdeepagentslangchain
    عرض على GitHub↗25,006
  • lazyprogrammer/machine_learning_examplesالصورة الرمزية لـ lazyprogrammer

    lazyprogrammer/machine_learning_examples

    8,823عرض على GitHub↗

    This project is a comprehensive collection of practical code examples and implementation libraries for machine learning. It provides a wide array of reference materials for building supervised, unsupervised, and reinforcement learning algorithms. The repository serves as a multi-domain resource, featuring specific implementation suites for financial AI, Bayesian statistical modeling, and deep learning architectures. It includes a framework for training intelligent agents using policy gradients and actor-critic models, as well as practical guides for fine-tuning transformers and utilizing larg

    Pythondata-sciencedeep-learningmachine-learning
    عرض على GitHub↗8,823
  • facebookresearch/fairseqالصورة الرمزية لـ facebookresearch

    facebookresearch/fairseq

    32,228عرض على GitHub↗

    Fairseq is a PyTorch toolkit for sequence-to-sequence modeling, specializing in neural machine translation, automatic speech recognition, and large-scale language model training. It provides a framework for processing and aligning diverse data sources, including text, audio, and video, to support tasks such as speech-to-text conversion and multimodal sequence learning. The project is distinguished by its distributed training capabilities, which utilize parameter sharding, mixed-precision training, and CPU offloading to handle models that exceed single-device memory. It also includes specializ

    Python
    عرض على GitHub↗32,228
  • comet-ml/comet-llmالصورة الرمزية لـ comet-ml

    comet-ml/comet-llm

    19,673عرض على GitHub↗

    Comet LLM is an observability platform and evaluation framework designed for large language model applications and agentic workflows. It functions as a system for tracing, monitoring, and debugging execution flows while providing tools for prompt optimization and the enforcement of AI safety guardrails. The platform distinguishes itself through a combination of model-based scoring and heuristic metrics to quantify output quality and detect hallucinations. It includes a dedicated prompt and agent optimizer with an interactive playground for refining templates and tool configurations. For retri

    Python
    عرض على GitHub↗19,673
  • meta-llama/llama-cookbookالصورة الرمزية لـ meta-llama

    meta-llama/llama-cookbook

    18,375عرض على GitHub↗

    This project is a collection of implementation guides, recipes, and developer resources for building applications with Llama models. It serves as a comprehensive kit for developing autonomous agents, establishing retrieval-augmented generation systems, and executing model fine-tuning. The resource provides specific patterns for multimodal workflows that process text, images, and audio. It includes specialized guidance on adapting pre-trained model weights for targeted tasks and implementing tool-calling orchestration to connect models with external APIs and functions. The codebase covers a b

    Jupyter Notebookaifinetuninglangchain
    عرض على GitHub↗18,375
  • microsoft/onnxruntimeالصورة الرمزية لـ microsoft

    microsoft/onnxruntime

    19,347عرض على GitHub↗

    This project is a cross-platform machine learning inference engine designed to execute pre-trained models across diverse operating systems and hardware environments. It functions as a standardized execution framework that manages the entire lifecycle of model inference, from loading and graph optimization to hardware-accelerated execution and generative sequence management. The runtime distinguishes itself through a highly modular architecture that decouples model logic from hardware-specific kernels. By utilizing an execution provider abstraction, it enables developers to offload computation

    C++ai-frameworkdeep-learninghardware-acceleration
    عرض على GitHub↗19,347
  • giskard-ai/giskardالصورة الرمزية لـ Giskard-AI

    Giskard-AI/giskard

    5,434عرض على GitHub↗

    Giskard is an evaluation framework, testing library, and quality monitoring system for large language models and AI agents. It serves as a toolkit for quantifying model performance and reliability, providing specialized capabilities for validating retrieval-augmented generation pipelines. The project distinguishes itself through an automated red teaming tool and security scanner designed to identify vulnerabilities, prompt injections, and safety risks. It utilizes adversarial probing and synthetic edge case generation to quantify model robustness and detect information disclosure. The platfo

    Python
    عرض على GitHub↗5,434