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News

Liquid AI’s tiny 2.6B model brings agents to phones and robots

Liquid AI's 2.6B model plans, calls tools, and runs fully on-device with a 128K context.

AIWadmin
Last updated: August 7, 2026 6:52 pm
AIWadmin
ByAIWadmin
Global AI news & information.
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Liquid AI’s latest release is built for the edge, not the data center. LFM2.5-2.6B, unveiled in early August, packs agentic behavior into 2.69 billion parameters so phones, laptops, PCs, and robots can plan, call tools, and finish multi-step tasks without a network round trip.

Pre-training consumed about 34 trillion tokens, and the design pairs a 128,000-token vocabulary with a context window of 131,072 tokens. Keeping inference on-device means prompts never leave the machine and each run costs almost nothing. Liquid AI says its tool-use and instruction-following results hold up against models nearly four times its size, leading every instruction-following benchmark it reports against gemma-4 and Qwen3.5 variants, with larger models still ahead in coding.

Both checkpoints are public on Hugging Face under the lfm1.0 license, with native, GGUF, MLX, and ONNX weights and day-one support in llama.cpp, vLLM, SGLang, and LM Studio. Performance claims include 220 tokens per second on an M5 Max in under 2.5 GB of memory, and a single H100 handling about 1.3 billion tokens per day.

Getting there took a four-stage post-training recipe: two supervised fine-tuning rounds, domain-specialist teachers trained with verifiable rewards, multi-domain on-policy distillation, and agentic reinforcement learning with GRPO inside real harnesses like Hermes Agent and OpenClaw.

Liquid AI is targeting automotive, consumer electronics, industrial robotics, healthcare, finance, e-commerce, and defense, suggesting the model for on-device assistants, offline document triage, form extraction, and robotics command parsing rather than agentic coding.

TAGGED:Agentic AIEdge ComputingLFM2.5Liquid AIon-device AIopen weightstool calling
SOURCES:MarkTechPostHugging Face
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