AINews: 18 Mar 2026 MiniMax 2.7: GLM-5 at 1/3 cost SOTA Open Model https://
latent.space/p/ainews-minim
ax-27-glm-5-at-13-cost
… congrats MiniMax!
MARKET TRENDS
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MiniMax 2.7 Offers SOTA Performance at One Third Cost
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Google Challenges Figma Reshaping Design Tool Landscape
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Google just took a massive stab at Figma
— Linus ✦ Ekenstam (@LinusEkenstam) 19 mars 2026
Unpopular take, Figma is still goat.
But this clearly creates a massive crater, a void that will re-shuffle the map.
Where will entry level designers go?
$10.000/M designers, gone.
Everyone gets better design?
we’re accelerating https://t.co/Ab748iNm27 pic.twitter.com/vBeS8taFzJGoogle just took a massive stab at Figma
Unpopular take, Figma is still goat. But this clearly creates a massive crater, a void that will re-shuffle the map. Where will entry level designers go?
$10.000/M designers, gone. Everyone gets better design? we’re accelerating -
Study Shows AI Is Making Us Work More Not Less
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He publicado un episodio en @ivoox
: "#1092: Un nuevo estudio revela que la IA nos está haciendo trabajar más (no menos) #podcast -
AI Platform for Smart Market Linkages and Buyer Intelligence
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Can your AI solution efficiently and accurately enable smart market linkages? We are challenging innovators to build an AI platform to provide market intelligence and buyer connections for Self-Help Group products. To help you build, the following datasets are available on
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Personalized AI-Generated Videos: The Future of Content Feeds
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We're really gonna have personalized AI videos — generated just-in-time — moments before you actually scroll to them on your feed.
— Bilawal Sidhu (@bilawalsidhu) 19 mars 2026
Plug in an algo like tiktok that can reverse engineer your soul, and good lord… you've got mountain dew straight to the vein. https://t.co/tZ5v4GJQDLWe're really gonna have personalized AI videos — generated just-in-time — moments before you actually scroll to them on your feed. Plug in an algo like tiktok that can reverse engineer your soul, and good lord… you've got mountain dew straight to the vein.
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Enterprise AI Adoption: Agents, Governance, and Multi-Platform Strategy
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Had meetings and a dinner with 20+ enterprise AI and IT leaders today. Lots of interesting conversations around the state of AI in large enterprises, especially regulated businesses. Here are some of general trends: * Agents are clearly the big thing. Enterprises moving from talking about chatbots to agents, though we’re still very early. Coding is still the dominant agentic use-case being adopted thus far, with other categories of across knowledge work starting to emerge. Lots of agentic work moving from pilots and PoCs into production, and some enterprises had lots of active live use-cases. * Agentic use-cases span every part of a business, from back office operations to client facing experiences from sales to customer onboarding workflows. General feeling is that agentic workflows will hit every part of an organization, often with biggest focus on delivering better for customers, getting better insights and intelligence from data and documents, speeding up high ROI workflows with agents, and so on. Very limited discussion on pure cost cutting. * Data and AI governance still remain core challenges. Getting data and content into a spot that agents can securely and easily operate on remains a huge task for more organizations. Years of data management fragmentation that wasn’t a problem now is an issue for enterprises looking to adopt agents. And governing what agents can do with data in a workflow still a major topic. * Identity emerging as a big topic. Can the agent have access to everything you have? In a world of dozens of agents working on behalf, potentially too much data exposure and scope for the agents. How do we manage agents with partitioned level of access to your information? * Lots of emerging questions on how we will budget for tokens across use-cases and teams. Companies don’t want to constrain use-cases, but equally need to be mindful of ultimate token budgets. This is going to become a bigger part of OpEx over time, and probably won’t make sense to be considered an IT budget anymore. Likely needs to be factored into the rest of operating expenses. * Interoperability is key. Every enterprise is deploying multiple AI systems right now, and it’s unlikely that there’s going to be a single platform to rule them all. Customers are getting savvier on how to handle agent interoperability, and this will be one of the biggest drivers of an AI stack going forward. Lots more takeaways than just this, but needless to say the momentum is building but equally enterprises are acutely aware of the change management and work ahead. Lots of opportunity right now.
→ View original post on X — @jiquanngiam, 2026-03-19 04:16 UTC
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Nvidia Conference Insights on AI and Humanoid Robotics
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What does Nvidia's conference tell us about AI? https://
youtu.be/hIczupWGDfk?si
=u2fc9-Xt97xI11Z0
… #nvidia #humanoidtech #humanoid #robot #Robotics #AI #TechRevolution #TechInnovation #ArtificialInteligence #PhysicalAI @SpirosMargaris @PawlowskiMario @mvollmer1 @gvalan @ipfconline1 @LaurentAlaus -
Gemini ChatGPT Claude Positioned for Distinct AI Market Roles
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Gemini will be the Android / iOS model ChatGPT will be the enterprise model Claude will be the specialized agents model
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Smart Money Investing in Quantum Computing Leadership
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The Smart Money In Quantum: Where Leaders Are Investing Attention, Talent And Capital
by @pravirmalik @Forbes Learn more: https://
bit.ly/40tdZ6j #QuantumComputing #EmergingTech #Technology #Innovation #Tech -
Governed GenAI Emerges as Enterprise Standard at NVIDIA GTC
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Live from @nvidia GTC in San Jose! A great session from @DominoDataLab CMO Thomas Been: “Building Governed GenAI on Enterprise Data.” Across GTC, the shift is clear: experimentation → governed, enterprise-grade AI. #NVIDIAGTC #GenAI #AI #EnterpriseAI #MLOps