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  • GEO myths: This article may contain lies
  • Paris-based AI voice startup Gradium nabs $70M seed
  • Google is expanding WAXAL beyond 21 languages — What it means for African researchers
  • A.I. Personalizes the Internet but Takes Away Control
  • Cohere Unveils Open Source Speech Model for Edge Devices
  • Arcee aims to reboot U.S. open source AI with new Trinity models released under Apache 2.0
  • Seven steps to AI supply chain visibility — before a breach forces the issue
  • Zyphra Releases ZUNA: A 380M-Parameter BCI Foundation Model for EEG Data, Advancing Noninvasive Thought-to-Text Development
  • Nous Research Releases NousCoder-14B: A Competitive Olympiad Programming Model Post-Trained on Qwen3-14B via Reinforcement Learning
  • Nvidia launches Alpamayo, open AI models that allow autonomous vehicles to ‘think like a human’
  • Hugging Face CEO says we’re in an ‘LLM bubble,’ not an AI bubble
  • Gemma 4: Byte for byte, the most capable open models
  • RoboChallenge’s Top-Ranked Embodied AI Model Goes Open Source
  • The 10 companies that just launched from Betaworks’ latest startup camp
  • Chinese AI models are popular. But can they make money?
  • Are AI agents ready for the workplace? A new benchmark raises doubts
  • Zhipu AI challenges Western rivals with low-cost GLM-4.7
  • Moonshot’s Kimi K2.5 is 'open,' 595GB, and built for agent swarms — Reddit wants a smaller one
  • AI cloud startup Runpod hits $120M in ARR — and it started with a Reddit post
  • Z.ai debuts open source GLM-4.6V, a native tool-calling vision model for multimodal reasoning
  • Black Forest Labs Releases FLUX.2 [klein]: Compact Flow Models for Interactive Visual Intelligence
  • Intel partners with AI chip startup SambaNova after acquisition talks reportedly failed
  • Runware raises $50M Series A to help make image, video generation easier for developers
  • Running LLMs dynamically, in production, on limited resources, is hard. We think there’s room for another approach…
  • Unsloth AI and NVIDIA are Revolutionizing Local LLM Fine-Tuning: From RTX Desktops to DGX Spark
  • OpenAI wants its API format to become the industry standard
  • Google releases FunctionGemma: a tiny edge model that can control mobile devices with natural language
  • Google Health AI Releases MedASR: a Conformer Based Medical Speech to Text Model for Clinical Dictation
  • Alibaba's new open Qwen image model aims for more natural-looking results
  • Nvidia’s Nemotron Super 3 model for agentic systems launches with five times higher throughput
  • Addverb’s Humanoid Bet: How This Noida Robotics Startup Is Building Physical AI
  • Into the Omniverse: Physical AI Open Models and Frameworks Advance Robots and Autonomous Systems
  • Mistral launches powerful Devstral 2 coding model including open source, laptop-friendly version
  • ‘Just an unbelievable amount of pollution’: how big a threat is AI to the climate?
  • Google, Cohere launch new audio AI models
  • AI models block 87% of single attacks, but just 8% when attackers persist
  • Boltz PBC Launches with $28M to Democratize AI Platforms for Drug Discovery
  • This is probably the most powerful external GPU enclosure around right now — Pluggable's TBT5-AI is the first to explicitly target local LLM and workstation GPU
  • Lightricks open-sources AI video model LTX-2, challenges Sora and Veo
  • Tencent Researchers Release Tencent HY-MT1.5: A New Translation Models Featuring 1.8B and 7B Models Designed for Seamless on-Device and Cloud Deployment
  • LLM-Pruning Collection: A JAX Based Repo For Structured And Unstructured LLM Compression
  • Open Responses vs. Chat Completion: A new era for AI apps
  • Google releases FunctionGemma to bring AI commands to smartphones
  • Liquid AI Releases LFM2.5-1.2B-Thinking: a 1.2B Parameter Reasoning Model That Fits Under 1 GB On-Device
  • OpenAGI emerges from stealth with an AI agent that it claims crushes OpenAI and Anthropic
  • Podcastle Rebrands as Async, Launching a Unified AI Platform for Creators and Developers
  • Cerebras Systems Raises $1 Billion Series H
  • China wins the open model race and the price to pay goes beyond economics
  • Nvidia launches robotics hackathon with $5,000 top prize to spur physical AI development
  • Alibaba's new Qwen models can clone voices from three seconds of audio
  • Allonic raises $7.2M pre‑seed round led by Visionaries Club
  • Hugging Face acquires robotics startup Pollen Robotics
  • Cerrion Secures $18M Series A to Accelerate AI Video Agent Platform
  • Synthesia
  • Kris@Work
  • Spellbook
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Beyond Semantic Similarity: Introducing NVIDIA NeMo Retriever’s Generalizable Agentic Retrieval Pipeline
Blog•Mar 13, 2026

Beyond Semantic Similarity: Introducing NVIDIA NeMo Retriever’s Generalizable Agentic Retrieval Pipeline

NVIDIA’s NeMo Retriever team unveiled an agentic retrieval pipeline that topped the ViDoRe v3 leaderboard and placed second on the reasoning‑heavy BRIGHT benchmark. The system replaces static semantic‑similarity searches with a ReACT‑style loop where an LLM agent iteratively plans, retrieves, and refines queries. Engineering advances, notably an in‑process singleton retriever, slashed latency and GPU overhead, making the approach viable at leaderboard scale. Ablation studies show the pipeline’s robustness across models and embeddings, while highlighting trade‑offs in speed and cost.

By Hugging Face
Lead Paris AI Community with Hugging Face Builders
Social•Mar 12, 2026

Lead Paris AI Community with Hugging Face Builders

Hugging Face Builders is a global community program that puts local leaders at the center of the open-source AI movement 🤗 If you're passionate about open AI and love bringing people together, this is your invitation to lead ✉️ Apply for to build the Paris chapter today ➡️ https://t.co/ONVBZdxRdc

By Hugging Face
Code Concepts: A Large-Scale Synthetic Dataset Generated From Programming Concept Seeds
Blog•Mar 11, 2026

Code Concepts: A Large-Scale Synthetic Dataset Generated From Programming Concept Seeds

Researchers introduced a concept‑driven workflow that produces synthetic code data aligned with specific programming skills. Using a taxonomy of 91 Python concepts, they generated roughly 15 million Python problems and incorporated 10 billion tokens into the final 100 billion‑token pretraining of Nemotron‑Nano‑v3. The...

By Hugging Face
Storage Buckets: Fast, Cheap, Mutable AI Data Storage
Social•Mar 10, 2026

Storage Buckets: Fast, Cheap, Mutable AI Data Storage

🪣 We just shipped Storage Buckets: S3-like mutable storage, cheaper & faster Git falls short for everything on high-throughput side of AI (checkpoints, processed data, agent traces, logs etc) Buckets fixes that: fast writes, overwrites, directory sync 💨 All powered by...

By Hugging Face
Granite 4.0 1B Speech: Compact, Multilingual, and Built for the Edge
Blog•Mar 9, 2026

Granite 4.0 1B Speech: Compact, Multilingual, and Built for the Edge

IBM released Granite 4.0 1B Speech, a compact multilingual speech‑language model aimed at resource‑constrained enterprise devices. The 1‑billion‑parameter model halves the size of its predecessor while delivering higher English transcription accuracy and faster inference via speculative decoding. It adds Japanese ASR and keyword‑list...

By Hugging Face
Ulysses Sequence Parallelism: Training with Million-Token Contexts
Blog•Mar 9, 2026

Ulysses Sequence Parallelism: Training with Million-Token Contexts

Ulysses Sequence Parallelism, part of Snowflake AI's Arctic Long Sequence Training protocol, distributes transformer attention across multiple GPUs by sharding both the input sequence and attention heads. The method replaces the quadratic memory bottleneck with two all‑to‑all communications per layer,...

By Hugging Face
Introducing Modular Diffusers - Composable Building Blocks for Diffusion Pipelines
Blog•Mar 5, 2026

Introducing Modular Diffusers - Composable Building Blocks for Diffusion Pipelines

Modular Diffusers launches a composable framework that breaks diffusion pipelines into interchangeable blocks such as text encoding, denoising, and decoding. Developers can assemble, replace, or run individual blocks, enabling lazy loading, memory‑efficient inference, and easy experimentation with models like FLUX.2‑Klein 4B....

By Hugging Face
Mixture of Experts (MoEs) in Transformers
Blog•Feb 26, 2026

Mixture of Experts (MoEs) in Transformers

Mixture‑of‑Experts (MoE) Transformers replace dense feed‑forward layers with multiple lightweight experts, activating only a few per token to keep inference cost low while preserving the capacity of much larger models. The Hugging Face transformers library introduced a WeightConverter that merges and splits...

By Hugging Face
Deploying Open Source Vision Language Models (VLM) on Jetson
Blog•Feb 24, 2026

Deploying Open Source Vision Language Models (VLM) on Jetson

NVIDIA’s Cosmos Reason 2B vision‑language model can now be deployed on the Jetson family using the vLLM inference engine. The tutorial walks through installing the NGC CLI, pulling FP8‑quantized weights, and running device‑specific Docker containers for AGX Thor, AGX Orin and Orin Super Nano. After...

By Hugging Face
Train AI Models with Unsloth and Hugging Face Jobs for FREE
Blog•Feb 20, 2026

Train AI Models with Unsloth and Hugging Face Jobs for FREE

The blog shows how Unsloth paired with Hugging Face Jobs lets developers fine‑tune the 1.2 B‑parameter LFM2.5‑Instruct model in half the usual time while using roughly 60 % less VRAM. By invoking a single `hf jobs` command, users can launch a managed GPU job,...

By Hugging Face
GGML and llama.cpp Join HF to Ensure the Long-Term Progress of Local AI
Blog•Feb 20, 2026

GGML and llama.cpp Join HF to Ensure the Long-Term Progress of Local AI

Hugging Face announced that GGML and its llama.cpp project are joining the company. Georgi Gerganov and his team will continue full‑time maintenance, retaining autonomy while receiving HF resources. Integration aims to streamline model deployment via the transformers library and improve...

By Hugging Face
Custom Kernels for All From Codex and Claude
Blog•Feb 13, 2026

Custom Kernels for All From Codex and Claude

Hugging Face released a 550‑token CUDA‑kernel agent skill that equips coding agents like Claude and Codex with architecture‑aware optimization knowledge. The skill was used to generate production‑ready RMSNorm, RoPE, GEGLU and AdaLN kernels for a diffusers video pipeline and a...

By Hugging Face
OpenEnv in Practice: Evaluating Tool-Using Agents in Real-World Environments
Blog•Feb 12, 2026

OpenEnv in Practice: Evaluating Tool-Using Agents in Real-World Environments

OpenEnv, an open‑source framework from Meta and Hugging Face, lets AI agents interact with real‑world tools through a standardized gym‑style API. Turing contributed a production‑grade Calendar Gym that mimics authentic calendar systems with access controls, partial visibility, and multi‑step workflows....

By Hugging Face
New Features: Community Eval Integration & Enhanced Data Tools
Social•Feb 6, 2026

New Features: Community Eval Integration & Enhanced Data Tools

We have been shipping 🛳️❤️ 📦 Community Evals & Benchmark Datasets: Benchmark datasets host benchmark leaderboards, you can now contribute eval results by opening a PR to model repositories, all PRs are fed to benchmark datasets 📦 Chat with datasets: agents...

By Hugging Face
Introducing SyGra Studio
Blog•Feb 5, 2026

Introducing SyGra Studio

SyGra 2.0.0 launches Studio, a visual IDE for building synthetic data generation workflows. The canvas lets users configure models, data sources, and prompts via drag‑and‑drop, automatically generating the underlying YAML/JSON graph. Studio provides live execution monitoring, token‑cost tracking, and inline...

By Hugging Face

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