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http://wayfair.com
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Boon Kgim Khur
Learn Parrot • 3K followers
Don't believe the BS that you can use Claude Code for free. Ollama recently made their API compatible with Claude Code. Many creators quickly jumped on the opportunity to farm engagement with the hook: "You can now use Claude Code for free!" My thought? Claude Code without Opus 4.5 is not Claude Code. Period. But this is exciting news. Not because I can use Claude Code for free, but because I see an opportunity to optimize costs by delegating easier tasks to local LLMs. The key question is: what tasks can local LLMs handle? I tested out 7 local LLMs. In this post, I will explain the BS and share my 1st experiment. -- Why the BS? Claude Code has been praised as one of the best AI tools by its users, not only for coding but for many other tasks. But the price feels steep to many. The $20/month plan is not enough for any serious work. You need to at least subscribe to Max 5x ($100/month). Many heavy users, including me, subscribe to Max 20x ($200/month). It’s a steal. But still, many were eager to try it but aren't ready to pay. Ollama's recent announcement means you can buy a Mac, a Strix Halo, or a GPU and use Claude Code for "free" with local LLMs. It’s appealing, as it is a one-time investment, and you can use the machine for other purposes. Creators are leveraging this opportunity to farm engagement. But the reality? Claude Code without Opus 4.5 is not the same Claude Code we praised. Local LLMs are far less intelligent. -- But for those who understand the difference, we see an opportunity to optimize costs by delegating some easier tasks to local LLMs. I'm interested in finding out what tasks local LLMs can handle. This is my typical flow when using Claude Code. This is for coding, but I have similar flows for marketing and content creation. 1. Research and planning 2. Create PRD and implementation plan 3. Break plan into bite-sized tasks 4. Implement + review with reflection pattern 5. Final review with agents 6. Final review and QA by me Based on my quick tests, we can forget about asking local LLMs to do research and planning. All of them failed at a simple instruction: "Visit https://learnparrot.ai/ and tell me about the website." So, I think the most viable use cases would only be (4) — implementation + review loops. While it looks like a very narrow use case, it is where we burn a lot of tokens. So I think it is worth a try. The main selection criteria for this will be instruction-following capability. One very common task is to refer to code samples or templates to code a new feature or page. This is a good test of instruction-following. So, I crafted my first test: - Used Opus to create HTML that I can screenshot as a LinkedIn carousel to display info for each model. - Turned one of the pages into a template and deleted the rest. - Asked each LLM to refer to the template to code its own page, given its specs. Swipe the carousel to see the results. Who would you hire? #LocalLLM #ClaudeCode #VibeCoding
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Marc Brooker
Amazon Web Services (AWS) • 18K followers
What does a modern database look like? If we were going to start over with the design of databases, instead of pulling forward the design decisions of the last 40 years, what would we choose to do? It's a huge question, but an important one. In a new blog post, I start to break down some of the changes that have come with modern hardware, including SSDs and the cloud, and how those changes affect database system architecture. Check it out here: https://lnkd.in/gYWX3dzR
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Ana Mihaela Oprita
2Performant.com (AERO: 2P) • 2K followers
Scrolling this season’s events, I see many proud product, ops, or finance experts. But impact demands more. Products need ops efficiency. Ops need financial clarity. Financials need product vision. Blend them to win. Integrate all 3 or stay mediocre. Build the machine, not just parts
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Omer Har
Explorium • 8K followers
Claude by Anthropic now speaks directly to MCP and that changes the game for signal-based GTM. Anyone using Claude can now connect to Explorium’s MCP in just a couple clicks. Once it’s set up, Claude can pull B2B data in real time, firmographics, financials, even 10Ks, directly into the prompt. That means agents can detect a trigger, grab context, and generate action-ready outputs, all in one flow, with no code and full autonomy.
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Andrew Schillinger
Connexure • 5K followers
Part 2 of my ongoing series From Vibe Code to Production-Ready is live! This one dives into Claude, Gemini, and MCPs (Zen + Serena) -- not just as shiny tools, but as a framework for moving from quick prototypes into reliable systems: Command patterns, context, and the practices that make "vibe coding" scale. Part 1 explored why vibe coding eventually breaks down, and Part 2 is the bridge: where experimentation starts becoming engineering. Part 3 will explore agent command patterns: Compacting, Context, and Claude Code Ops Read here: https://lnkd.in/e8-dnaYC #AI #MCP #ClaudeAI #Gemini #AgenticAI #Engineering #ProductDevelopment #VibeCoding #FromPrototypeToProduction #TechLeadership
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Tyler Zey
Ours Privacy • 4K followers
Excited to share a big milestone for us at Ours Privacy We’re announcing our new CMP (consent management platform) built for healthcare—and a round of funding led by Rock Health Capital. There’s a lot we believe in: privacy, infrastructure, compliance, clarity. But more than anything, we believe in shipping. We ship fast, we ship carefully, and we ship what healthcare marketers actually need.
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Brady Weller
QSBS Rollover • 11K followers
Brian Lamb and his team at Promissory are building a modern platform for stacking trusts and maximizing QSBS. He answers all of the critical questions around how these trusts can be used, and who they're best suited for, on this week's episode of "QSBS, Solved". Listen: https://lnkd.in/eVjXnEKC
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Rob Taylor, Esq.
Taylor Legal Engineering, LLC • 926 followers
Anthropic recently shipped Legal Skills for Claude Desktop's Cowork, which triggered a market selloff. We ran its contract review feature against our own custom, legally engineered pipeline. The SaaS contract, playbook, and model (Opus 4.6) were all the same. The results were not: - Findings: 222 vs. 18 (12.3x delta) - Track changes applied to DOCX: 52 vs. 0 - Quantitative risk score: 93/100 vs. "CRITICAL" (a label, not a number) - Market benchmarks with percentiles: 12 vs. 0 - Comparable contracts analyzed: 4 vs. 0 - Deliverables produced: 7 vs. 1 The pipeline also produced a send-ready negotiation email, a strategy report with 10 priorities each with target/fallback/walk-away positions, 8 anticipated pushback scenarios with prepared counters, 15 talking points citing market data, and analytics with risk scoring, playbook alignment, and market percentile benchmarks for every major term. That said, Claude Desktop's output, while narrow, did correctly identify the 8 most dangerous provisions from the Provider's perspective: liability cap carve-outs, MFN pricing, escrow, uncapped indemnification. For a 5-minute investment, that's genuinely impressive. But even here, the depth gap was critical and obvious. Only the pipeline connected Section 13.3(f), which carves out insurance-covered losses from the cap, to the insurance requirements in Section 16. The practical effect: Provider's own insurance policy limits become the real liability cap, not the negotiated number in Section 13. You negotiate a $1M cap. You carry $10M in cyber insurance. Your actual exposure is $10M. A single pass reads Section 13 and Section 16 independently. Sixteen specialists cross-referencing each other catch the interaction. The same pattern repeats throughout. A 5-day outage simultaneously triggers SLA credits, DR termination, escrow source code release, and unlimited liability — a cascade across four sections. Three separate payment withholding mechanisms plus an express prohibition on service suspension effectively eliminates revenue protection. These mechanisms are not an accident. They're a coordinated conspiracy woven into the contract. And only AI specialists, working in parallel and synthesized together, are built to find it. This is our fifth controlled experiment. The pattern holds across drafting, triage, legal research, redlining, and now contract review. The model is not the product. The architecture around the model is the product. If you want to see what that looks like for your legal work: Taylor Legal Engineering, LLC. Full interactive report with methodology, pipeline architecture, and all comparison data: https://lnkd.in/eyiaXcdd #LegalTech #LegalEngineering #AI #ClaudeDesktop #ContractReview #LegalAI #LegalOps #MultiAgentAI #SaaS
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Evan Huck
UserEvidence • 15K followers
Excited to announce our G2 -UserEvidence integration - which allows shared customers to ingest G2 reviews into their UE libraries, to organize and transform into beautiful content, and distribute to GTM teams. Prospects look to their peers more than ever in today's buying environment, and G2 is the largest and most trusted review site out there. The union of G2 reviews w/UE-generated evidence helps shared customers like Gong, Sprout Social, Grammarly, Recorded Future, and Vanta put an incredibly substantive collection of credible customer voice content in front of prospects to build trust. Thanks to Godard Abel, Tim Handorf, Christine Li, Rachel Bentley, Eric Gilpin, Sydney Sloan, and Palmer Houchins for your partnership! Full details in the link in the comments
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