Liquid AI vs LangChain

Side-by-side comparison of AI visibility scores, market position, and capabilities

LangChain leads in AI visibility (86 vs 18)
Liquid AI logo

Liquid AI

EmergingArtificial Intelligence

Efficient AI Models (Non-Transformer)

Raised $250M Series A at $2B valuation (Dec 2024) led by AMD. LFM2-24B (Feb 2026): 24B knowledge density, 2.3B active params. Runs on 32GB RAM laptop. Non-transformer architecture.

AI VisibilityBeta
Overall Score
D18
Category Rank
#1 of 1
AI Consensus
75%
Trend
up
Per Platform
ChatGPT
18
Perplexity
26
Gemini
24

About

Liquid AI is an MIT-spinout developing Liquid Foundation Models (LFMs) — AI models based on liquid neural network architecture rather than the transformer architecture that underpins virtually all major AI systems. The company raised $250 million in Series A financing at a $2 billion valuation in December 2024, led by AMD, which has strategic motivation to support non-NVIDIA-optimized model architectures. In February 2026, Liquid released LFM2-24B-A2B — a model with 24 billion parameters' worth of knowledge density that runs on only 2.3 billion active parameters, enabling deployment on a standard 32GB RAM laptop.

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LangChain logo

LangChain

LeaderAI Infrastructure

AI Agent Framework

Most cited AI agent framework in 2026; LangGraph has 8,200+ GitHub stars. $25M Series A at $200M valuation. LangSmith observability platform for production agents. Used in majority of enterprise multi-agent deployments; 80K+ GitHub stars total.

AI VisibilityBeta
Overall Score
A86
Category Rank
#2 of 2
AI Consensus
86%
Trend
up
Per Platform
ChatGPT
87
Perplexity
88
Gemini
93

About

LangChain was founded in 2022 by Harrison Chase and emerged from the open-source community as the dominant framework for building applications powered by large language models. Originally a Python library, it provided developers with composable building blocks—chains, agents, memory modules, and tool integrations—to connect LLMs with external data sources and APIs. The framework addressed a critical gap: making it practical to build production-grade LLM applications beyond simple prompt-and-response patterns.\n\nLangChain's product portfolio has expanded significantly, with LangGraph serving as its graph-based orchestration layer for stateful, multi-actor AI agent workflows. LangSmith provides observability, debugging, and evaluation tooling for LLM pipelines in production. The commercial LangChain Platform offers hosted deployment and collaboration features for enterprise teams. These products target AI engineers, ML teams at enterprises, and the broader developer community building agent-based systems and RAG pipelines.\n\nWith over 100,000 active developers and LangGraph accumulating 8,200+ GitHub stars, LangChain remains the most cited AI agent framework heading into 2026. The company raised a $25M Series A at a $200M valuation and has become deeply embedded in how enterprises build and deploy AI agents. Its ecosystem of integrations—covering hundreds of LLM providers, vector databases, and tools—makes it a foundational layer of the modern AI application stack.

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AI Visibility Head-to-Head

18
Overall Score
86
#1
Category Rank
#2
75
AI Consensus
86
up
Trend
up
18
ChatGPT
87
26
Perplexity
88
24
Gemini
93
16
Claude
90
21
Grok
90

Key Details

Category
Efficient AI Models (Non-Transformer)
AI Agent Framework
Tier
Emerging
Leader
Entity Type
brand
oss project

Capabilities & Ecosystem

Capabilities

Only Liquid AI
Efficient AI Models (Non-Transformer)
LangChain is classified as oss project.

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