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Back to future-agi/traceai

Open-source alternatives to TraceAI

22 open-source projects similar to future-agi/traceai, ranked by how many features they have in common. Compare stars, activity and what each one does to find the best TraceAI alternative.

  • traceloop/openllmetryAvatar von traceloop

    traceloop/openllmetry

    7,202Auf GitHub ansehen↗

    OpenLLMetry is an OpenTelemetry-based observability framework and instrumentation library for generative AI applications. It provides toolsets for tracing and monitoring large language model workflows, capturing telemetry from model providers, agent frameworks, and vector databases using standardized semantic conventions. The project distinguishes itself by providing a specialized evaluation and experimentation suite that associates user feedback and prompt version hashes with specific execution traces. It includes a system for tracking model reasoning paths and enforcing security guardrails

    Python
    Auf GitHub ansehen↗7,202
  • arize-ai/phoenixAvatar von Arize-ai

    Arize-ai/phoenix

    8,605Auf GitHub ansehen↗

    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
    Auf GitHub ansehen↗8,605
  • cloudwego/einoAvatar von cloudwego

    cloudwego/eino

    9,675Auf GitHub ansehen↗

    Eino is an AI agent development kit and LLM application framework designed for building autonomous agents and orchestrating complex language model workflows. It serves as a multi-agent orchestration engine and workflow orchestrator, providing a graph-based execution model to route data between models, tools, and retrievers. The framework distinguishes itself through a robust set of multi-agent coordination patterns, including supervisor-led management, sequential flows, and autonomous reasoning loops like ReAct. It features advanced agent execution controls such as active turn preemption, che

    Goaiai-applicationai-framework
    Auf GitHub ansehen↗9,675

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  • microsoft/promptflowAvatar von microsoft

    microsoft/promptflow

    11,165Auf GitHub ansehen↗

    Promptflow is a development framework and orchestrator for building applications powered by large language models. It functions as a suite of tools for designing, orchestrating, and deploying AI workflows by linking prompts, custom Python code, and language models into executable sequences. The project is distinguished by a visual AI workflow designer that allows for the creation of directed acyclic graphs of logic nodes. It provides a dedicated prompt engineering environment for versioning and comparing templates, alongside stateful execution tracing to record function calls and variable val

    Python
    Auf GitHub ansehen↗11,165
  • evidentlyai/evidentlyAvatar von evidentlyai

    evidentlyai/evidently

    7,137Auf GitHub ansehen↗

    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
    Auf GitHub ansehen↗7,137
  • fiddler-labs/fiddler-auditorAvatar von fiddler-labs

    fiddler-labs/fiddler-auditor

    192Auf GitHub ansehen↗

    Fiddler Auditor is a tool to evaluate language models.

    Python
    Auf GitHub ansehen↗192
  • future-agi/future-agiAvatar von future-agi

    future-agi/future-agi

    1,175Auf GitHub ansehen↗

    Open-source, end-to-end platform for evaluating, observing, and improving LLM and AI agent applications. Tracing · Evals · Simulations · Datasets · Gateway · Guardrails. Self-hostable. Apache 2.0.

    Python
    Auf GitHub ansehen↗1,175
  • future-agi/futureagi-sdkAvatar von future-agi

    future-agi/futureagi-sdk

    50Auf GitHub ansehen↗

    Production-grade AI evaluation, prompt management & observability SDK. Automated evaluations with sub-100ms guardrails. No human-in-the-loop required. Python TypeScript.

    Python
    Auf GitHub ansehen↗50
  • giskard-ai/giskardAvatar von Giskard-AI

    Giskard-AI/giskard

    5,434Auf GitHub ansehen↗

    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
    Auf GitHub ansehen↗5,434
  • helicone/heliconeAvatar von Helicone

    Helicone/helicone

    5,830Auf GitHub ansehen↗

    Helicone is an AI gateway and observability platform designed to intercept, manage, and monitor interactions with large language models. By acting as a reverse-proxy, it provides a centralized layer for routing requests across multiple AI providers, allowing developers to maintain consistent application logic while gaining deep visibility into model performance, usage, and costs. The platform distinguishes itself through a robust suite of traffic management and prompt engineering tools. It enables policy-driven control, including automatic failover between providers, rate limiting, and edge-b

    TypeScript
    Auf GitHub ansehen↗5,830
  • hidai25/eval-viewAvatar von hidai25

    hidai25/eval-view

    116Auf GitHub ansehen↗

    Regression testing for AI agents. Snapshot behavior,diff tool calls,catch regressions in CI. Works with LangGraph, CrewAI, OpenAI, Anthropic.

    Python
    Auf GitHub ansehen↗116
  • imran-siddique/agent-hypervisorAvatar von imran-siddique

    imran-siddique/agent-hypervisor

    1Auf GitHub ansehen↗

    Runtime supervisor for multi-agent Shared Sessions with Execution Rings, Joint Liability, and Saga Orchestration

    Python
    Auf GitHub ansehen↗1
  • imran-siddique/agent-sreAvatar von imran-siddique

    imran-siddique/agent-sre

    7Auf GitHub ansehen↗

    Reliability Engineering for AI Agent Systems

    Python
    Auf GitHub ansehen↗7
  • metawake/ragtuneAvatar von metawake

    metawake/ragtune

    12Auf GitHub ansehen↗

    EXPLAIN ANALYZE for RAG retrieval — inspect, debug, benchmark, and tune your retrieval layer

    Go
    Auf GitHub ansehen↗12
  • mnfst/manifestAvatar von mnfst

    mnfst/manifest

    7,022Auf GitHub ansehen↗

    Manifest is a language model provider unification system that standardizes access to multiple AI backends through a single interface. It functions as a centralized management layer for integrating various cloud-based and local model providers to simplify how applications request completions. The system provides intelligent model routing and high availability infrastructure by directing queries based on complexity and automatically triggering model fallbacks when a primary provider fails. It distinguishes itself through multi-tenant AI management, organizing agents into isolated groups with de

    TypeScript
    Auf GitHub ansehen↗7,022
  • onllm-dev/onwatchAvatar von onllm-dev

    onllm-dev/onwatch

    668Auf GitHub ansehen↗

    Track AI API quotas across Synthetic, Z.ai, Anthropic (Claude Code), Codex, GitHub Copilot & Antigravity in real time. Lightweight background daemon (<50MB RAM), SQLite storage, Material Design 3 dashboard. Zero telemetry.

    Go
    Auf GitHub ansehen↗668
  • qwed-ai/qwed-verificationAvatar von QWED-AI

    QWED-AI/qwed-verification

    58Auf GitHub ansehen↗

    AISecOps (AI Security Operations) framework for deterministic verification of AI systems. QWED verifies LLM outputs using math, logic, and symbolic execution — creating an auditable trust boundary for agentic AI systems. Not generation. Verification.

    Python
    Auf GitHub ansehen↗58
  • aashirpersonal/semantic-coverageAvatar von aashirpersonal

    aashirpersonal/semantic-coverage

    12Auf GitHub ansehen↗

    Automated detection of knowledge gaps and blind spots in RAG vector stores.

    Python
    Auf GitHub ansehen↗12
  • voightxyz/voight-vercel-aiAvatar von Voightxyz

    Voightxyz/voight-vercel-ai

    7Auf GitHub ansehen↗

    Voight observability for the Vercel AI SDK. An OpenTelemetry SpanExporter that ingests the experimental_telemetry spans produced by streamText / generateText / streamObject / generateObject — prompts, tokens, tool calls, cache reads, latency, errors — surfaced live in the Voight dashboard.

    TypeScript
    Auf GitHub ansehen↗7
  • aavetis/azure-openai-loggerAvatar von aavetis

    aavetis/azure-openai-logger

    73Auf GitHub ansehen↗

    "Batteries included" logging solution for your Azure OpenAI instance.

    Bicep
    Auf GitHub ansehen↗73
  • deepchecks/deepchecksAvatar von deepchecks

    deepchecks/deepchecks

    4,024Auf GitHub ansehen↗

    Deepchecks is a machine learning model validation framework and MLOps testing library. It serves as an AI data quality suite and performance evaluator designed to verify the integrity and performance of models and datasets from research through production. The project functions as a model monitoring tool for tracking data drift and performance degradation in production environments. It allows for the creation of custom validation suites and utilizes a pluggable check architecture to automate quality checks within continuous integration pipelines. The framework covers a broad range of capabil

    Python
    Auf GitHub ansehen↗4,024
  • enmanuelmag/heimdall-mcpAvatar von enmanuelmag

    enmanuelmag/heimdall-mcp

    9Auf GitHub ansehen↗

    Transparent proxy for any MCP server. Intercepts all JSON-RPC messages, measures latency, stores traces in a configurable database, and enforces per-server allow/deny policies — without touching the original server.

    TypeScript
    Auf GitHub ansehen↗9