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@eon01 added a new tool Unsloth , 1 week, 2 days ago.
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@eon01 published a course, 1 week, 2 days ago
Founder, FAUN.dev

Local AI Engineering with Ollama

Docker Redis LangChain Ollama Unsloth

Run, understand, customize, fine-tune, and build agentic apps on your own hardware

Local AI Engineering with Ollama
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@laura_garcia shared a post, 1 week, 2 days ago
Software Developer, RELIANOID

EU Investment in Cybersecurity: Time for investing in Secure Solutions

🚨 €𝟭.𝟯 𝗕𝗜𝗟𝗟𝗜𝗢𝗡. That's how much the 𝗘𝗨 is investing in 𝗔𝗜, 𝗰𝘆𝗯𝗲𝗿𝘀𝗲𝗰𝘂𝗿𝗶𝘁𝘆, 𝗮𝗻𝗱 𝗱𝗶𝗴𝗶𝘁𝗮𝗹 𝘀𝗸𝗶𝗹𝗹𝘀. But here's the real question: 👉 𝙄𝙨 𝙮𝙤𝙪𝙧 𝙞𝙣𝙛𝙧𝙖𝙨𝙩𝙧𝙪𝙘𝙩𝙪𝙧𝙚 𝙧𝙚𝙖𝙙𝙮 𝙛𝙤𝙧 𝙬𝙝𝙖𝙩'𝙨 𝙘𝙤𝙢𝙞𝙣𝙜 𝙣𝙚𝙭𝙩? The European Commission has just sent a powerful message to organizations across Europe: cybersecurity is no longer optio..

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@nextgensoft shared a post, 1 week, 3 days ago
Marketing Manager, nextgensoft

Why Businesses Are Moving from Generative AI to Agentic AI Systems?

Businesses are shifting from Generative AI to Agentic AI systems because modern enterprises need more than content generation; they need AI that can think, plan, make decisions, and execute tasks autonomously. Agentic AI enables smarter workflow automation, faster decision-making, reduced manual effort, and improved operational efficiency across industries. As businesses focus on scalability and intelligent automation, Agentic AI is emerging as the next evolution of enterprise AI solutions.

01- Agentic AI Systems
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@nextgensoft shared a link, 1 week, 3 days ago
Marketing Manager, nextgensoft

Agentic AI Systems: Types, Architecture & Enterprise Use Cases

Want to build Agentic AI System? Explore this guide on Agentic AI systems, their types, architecture, and enterprise use cases.

01- Agentic AI Systems-v2
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@jamesmiller shared a post, 1 week, 3 days ago
Penetration Tester, ZeroThreat.ai

How Agentic AI Pentesting is Transforming Security: Is it Going to Replace Pentesters?

Agentic AI pentesting is transforming security by moving beyond traditional, point-in-time assessments to continuous, autonomous attack simulation. It can map attack surfaces, chain vulnerabilities, and validate real risks at scale. While it won't replace human pentesters, it will amplify their capabilities, enabling faster, deeper, and more effective security testing.

How Agentic AI Pentesting is Transforming Security
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@basit001 shared a post, 1 week, 3 days ago
Co-Founder, Levelop.dev

Beyond the Canvas: How Big Tech Approaches High-Level Design (And Why Most Interviewees Fail It)

Why big tech interviewers are tired of seeing the exact same blueprint, and how to fix it in 60 seconds.

System Design
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@neel_devops shared a link, 1 week, 3 days ago
Developer Advocate, StackGen

Top 10 CI/CD Tools Every DevOps Engineer Should Know in 2026

CI/CD stands for Continuous Integration and Continuous Delivery (or Continuous Deployment). It’s the practice of automating the process of integrating code changes, testing them, and delivering them to production — often dozens or hundreds of times a day.

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@alok00k shared a post, 1 week, 3 days ago

Software Testing Life Cycle: Building Reliable Software From Planning to Release

The Software Testing Life Cycle (STLC) is a structured process that helps teams ensure software quality through different testing phases such as requirement analysis, test planning, test case development, environment setup, test execution, and test closure. It enables organizations to identify defects early, improve test coverage, and deliver stable applications with greater confidence.

ChatGPT Image May 20, 2026, 02_03_54 PM
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@alok00k shared a post, 1 week, 3 days ago

Why Smoke Testing Is Essential for Modern Software Teams

Smoke testing is a quick testing method used to verify whether the core functionality of an application works properly after a new build or deployment. It helps teams detect critical issues early, avoid wasting QA effort on unstable builds, and improve deployment confidence in CI/CD pipelines.

ChatGPT Image May 18, 2026, 02_32_13 PM
Gemini 3 is Google’s third-generation large language model family, designed to power advanced reasoning, multimodal understanding, and long-running agent workflows across consumer and enterprise products. It represents a major step forward in factual reliability, long-context comprehension, and tool-driven autonomy.

At its core, Gemini 3 emphasizes low hallucination rates, deep synthesis across large information spaces, and multi-step reasoning. Models in the Gemini 3 family are trained with scaled reinforcement learning for search and planning, enabling them to autonomously formulate queries, evaluate results, identify gaps, and iterate toward higher-quality outputs.

Gemini 3 powers advanced agents such as Gemini Deep Research, where it excels at producing well-structured, citation-rich reports by combining web data, uploaded documents, and proprietary sources. The model supports very large context windows, multimodal inputs (text, images, documents), and structured outputs like JSON, making it suitable for research, finance, science, and enterprise knowledge work.

Gemini 3 is available through Google’s AI platforms and APIs, including the Interactions API, and is being integrated across products such as Google Search, NotebookLM, Google Finance, and the Gemini app. It is positioned as Google’s most factual and research-capable model generation to date.