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Dimitry Nakhla | Babylon Capitalยฎ
RT @DimitryNakhla: ๐‚๐ก๐ซ๐ข๐ฌ ๐‡๐จ๐ก๐ง, ๐’๐ฎ๐ฉ๐ž๐ซ ๐‚๐จ๐ฆ๐ฉ๐š๐ง๐ข๐ž๐ฌ & ๐–๐ก๐ฒ ๐†๐ซ๐จ๐ฐ๐ญ๐ก ๐ˆ๐ฌ๐งโ€™๐ญ ๐–๐ก๐š๐ญ ๐Œ๐จ๐ฌ๐ญ ๐ˆ๐ง๐ฏ๐ž๐ฌ๐ญ๐จ๐ซ๐ฌ ๐“๐ก๐ข๐ง๐ค:

โ€œGrowth can come from two forms โ€” price and volumeโ€ฆ Most companies donโ€™t have pricing powerโ€ฆ But there is a special group of super companies that can price above inflation. And thatโ€™s, as Buffett taught, the test of whether you have the moat.

If youโ€™re asking about volume growthโ€ฆ I may have low volume growth but a lot of pricing growth โ€” thatโ€™s actually more important because of the leveraged effectโ€ฆ thereโ€™s no cost associated with it.โ€
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๐“๐ก๐ž ๐ฅ๐ž๐ฌ๐ฌ๐จ๐ง: ๐˜•๐˜ฐ๐˜ต ๐˜ข๐˜ญ๐˜ญ ๐˜จ๐˜ณ๐˜ฐ๐˜ธ๐˜ต๐˜ฉ ๐˜ช๐˜ด ๐˜ค๐˜ณ๐˜ฆ๐˜ข๐˜ต๐˜ฆ๐˜ฅ ๐˜ฆ๐˜ฒ๐˜ถ๐˜ข๐˜ญ. ๐™‘๐™ค๐™ก๐™ช๐™ข๐™š-๐™™๐™ง๐™ž๐™ซ๐™š๐™ฃ ๐™œ๐™ง๐™ค๐™ฌ๐™ฉ๐™ ๐˜ฐ๐˜ง๐˜ต๐˜ฆ๐˜ฏ ๐˜ณ๐˜ฆ๐˜ฒ๐˜ถ๐˜ช๐˜ณ๐˜ฆ๐˜ด ๐˜ค๐˜ข๐˜ฑ๐˜ช๐˜ต๐˜ข๐˜ญ, ๐˜ง๐˜ข๐˜ค๐˜ฆ๐˜ด ๐˜ค๐˜ฐ๐˜ฎ๐˜ฑ๐˜ฆ๐˜ต๐˜ช๐˜ต๐˜ช๐˜ฐ๐˜ฏ, ๐˜ข๐˜ฏ๐˜ฅ ๐˜ต๐˜บ๐˜ฑ๐˜ช๐˜ค๐˜ข๐˜ญ๐˜ญ๐˜บ ๐˜ค๐˜ข๐˜ณ๐˜ณ๐˜ช๐˜ฆ๐˜ด ๐˜ฎ๐˜ฆ๐˜ข๐˜ฏ๐˜ช๐˜ฏ๐˜จ๐˜ง๐˜ถ๐˜ญ ๐˜ช๐˜ฏ๐˜ค๐˜ณ๐˜ฆ๐˜ฎ๐˜ฆ๐˜ฏ๐˜ต๐˜ข๐˜ญ ๐˜ค๐˜ฐ๐˜ด๐˜ต๐˜ด. ๐™‹๐™ง๐™ž๐™˜๐™ž๐™ฃ๐™œ-๐™™๐™ง๐™ž๐™ซ๐™š๐™ฃ ๐™œ๐™ง๐™ค๐™ฌ๐™ฉ๐™โ€” ๐˜ธ๐˜ฉ๐˜ฆ๐˜ฏ ๐˜ด๐˜ถ๐˜ฑ๐˜ฑ๐˜ฐ๐˜ณ๐˜ต๐˜ฆ๐˜ฅ ๐˜ฃ๐˜บ ๐˜ฅ๐˜ถ๐˜ณ๐˜ข๐˜ฃ๐˜ญ๐˜ฆ ๐˜ค๐˜ฐ๐˜ฎ๐˜ฑ๐˜ฆ๐˜ต๐˜ช๐˜ต๐˜ช๐˜ท๐˜ฆ ๐˜ข๐˜ฅ๐˜ท๐˜ข๐˜ฏ๐˜ต๐˜ข๐˜จ๐˜ฆ๐˜ด โ€” ๐˜ฃ๐˜ฆ๐˜ฉ๐˜ข๐˜ท๐˜ฆ๐˜ด ๐˜ท๐˜ฆ๐˜ณ๐˜บ ๐˜ฅ๐˜ช๐˜ง๐˜ง๐˜ฆ๐˜ณ๐˜ฆ๐˜ฏ๐˜ต๐˜ญ๐˜บ.
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๐˜ผ๐™ฃ๐™™ ๐™ฉ๐™๐™ž๐™จ ๐™ž๐™จ ๐™ฌ๐™๐™š๐™ง๐™š ๐™ž๐™ฃ๐™˜๐™ง๐™š๐™ข๐™š๐™ฃ๐™ฉ๐™–๐™ก ๐™ค๐™ฅ๐™š๐™ง๐™–๐™ฉ๐™ž๐™ฃ๐™œ ๐™ข๐™–๐™ง๐™œ๐™ž๐™ฃ๐™จ ๐™—๐™š๐™˜๐™ค๐™ข๐™š ๐™˜๐™ง๐™ž๐™ฉ๐™ž๐™˜๐™–๐™ก. ๐™„๐™ฃ๐™˜๐™ง๐™š๐™ข๐™š๐™ฃ๐™ฉ๐™–๐™ก ๐™ข๐™–๐™ง๐™œ๐™ž๐™ฃ ๐™จ๐™ž๐™ข๐™ฅ๐™ก๐™ฎ ๐™–๐™จ๐™ ๐™จ:

For each new $1 of revenue, how much drops to operating profit?

Companies with genuine pricing power often exhibit:

โ€ข Higher incremental margins
โ€ข Stronger profit flow-through
โ€ข Minimal incremental cost

Because price increases largely bypass the cost structure.

๐˜ž๐˜ฉ๐˜ฆ๐˜ฏ ๐˜ช๐˜ฏ๐˜ค๐˜ณ๐˜ฆ๐˜ฎ๐˜ฆ๐˜ฏ๐˜ต๐˜ข๐˜ญ ๐˜ฎ๐˜ข๐˜ณ๐˜จ๐˜ช๐˜ฏ๐˜ด ๐˜ข๐˜ณ๐˜ฆ ๐˜ฉ๐˜ช๐˜จ๐˜ฉ, ๐˜ฆ๐˜ท๐˜ฆ๐˜ฏ ๐˜ฎ๐˜ฐ๐˜ฅ๐˜ฆ๐˜ด๐˜ต ๐˜ณ๐˜ฆ๐˜ท๐˜ฆ๐˜ฏ๐˜ถ๐˜ฆ ๐˜จ๐˜ณ๐˜ฐ๐˜ธ๐˜ต๐˜ฉ ๐˜ค๐˜ข๐˜ฏ ๐˜ต๐˜ณ๐˜ข๐˜ฏ๐˜ด๐˜ญ๐˜ข๐˜ต๐˜ฆ ๐˜ช๐˜ฏ๐˜ต๐˜ฐ ๐˜ฐ๐˜ถ๐˜ต๐˜ด๐˜ช๐˜ป๐˜ฆ๐˜ฅ ๐˜ฑ๐˜ณ๐˜ฐ๐˜ง๐˜ช๐˜ต ๐˜จ๐˜ณ๐˜ฐ๐˜ธ๐˜ต๐˜ฉ. ๐˜›๐˜ฉ๐˜ช๐˜ด ๐˜ช๐˜ด ๐˜ต๐˜ฉ๐˜ฆ ๐˜ฉ๐˜ช๐˜ฅ๐˜ฅ๐˜ฆ๐˜ฏ ๐˜ฆ๐˜ฏ๐˜จ๐˜ช๐˜ฏ๐˜ฆ ๐˜ฃ๐˜ฆ๐˜ฉ๐˜ช๐˜ฏ๐˜ฅ ๐˜ฎ๐˜ข๐˜ฏ๐˜บ ๐˜ฆ๐˜น๐˜ค๐˜ฆ๐˜ฑ๐˜ต๐˜ช๐˜ฐ๐˜ฏ๐˜ข๐˜ญ ๐˜ค๐˜ฐ๐˜ฎ๐˜ฑ๐˜ฐ๐˜ถ๐˜ฏ๐˜ฅ๐˜ฆ๐˜ณ๐˜ด.
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๐™€๐™ญ๐™–๐™ข๐™ฅ๐™ก๐™š๐™จ ๐™ค๐™› ๐™จ๐™ช๐™ฅ๐™š๐™ง ๐™˜๐™ค๐™ข๐™ฅ๐™–๐™ฃ๐™ž๐™š๐™จ ๐™ฉ๐™๐™–๐™ฉ ๐™š๐™ญ๐™๐™ž๐™—๐™ž๐™ฉ ๐™ฉ๐™๐™š๐™จ๐™š ๐™˜๐™๐™–๐™ง๐™–๐™˜๐™ฉ๐™š๐™ง๐™ž๐™จ๐™ฉ๐™ž๐™˜๐™จ:

โ€ข $FICO
โ€ข $ASML
โ€ข $NVDA
โ€ข $GE
โ€ข $TDG
โ€ข $MA
โ€ข $SPGI
โ€ข $MCO

Different industries. Similar underlying economics:

Durable moats + pricing power + strong incremental margins.
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Video: In Good Company | Norges Bank Investment Management (05/14/2025)
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DAIR.AI
RT @dair_ai: // Efficient Evolution of Web Agents //

Web agents waste a lot of compute on cyclic reasoning loops and unproductive exploration.

This new research introduces WebClipper, a framework that models web agent search processes as state graphs and prunes them into minimal directed acyclic graphs (DAGs).

The result: ~20% reduction in tool-call rounds while maintaining or improving accuracy.

They also introduce F-AE Score, a metric that evaluates the balance between accuracy and efficiency in agent trajectories.

Training agents on refined, pruned trajectories helps them develop more streamlined reasoning patterns from the start. Efficiency in agentic systems isn't just about faster models; it's really about eliminating wasted steps. This could significantly reduce costs as well.

Paper: https://t.co/GnvRt0VDq1
Learn to build effective AI agents in our academy: https://t.co/LRnpZN7L4c
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Brady Long
I spoke to my Mac for 30 seconds.

90 minutes of work just... happened.

Emails sent. Docs written. Everything filed.

I made coffee while Lemon finished my day. https://t.co/zsGStTDu5g
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DAIR.AI
RT @omarsar0: Managing rules for coding agents is a headache.

Claude Code, Cursor, Copilot... each uses its own standards.

Outdated rules derail coding agents, as we all know.

@QodoAI just shipped a rule system built on continuous learning.

It auto-discovers standards from your codebase and PR history, manages them centrally (dedup, conflict detection, severity levels), and gives you analytics to prove they're working.

It moves away from config files to a living, automated standards system.

The best part is that coding standards are now enforced in every PR.
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DAIR.AI
A paper worth paying close attention to.

It presents Lossless Context Management (LCM), which reframes how agents handle long contexts.

It outperforms Claude Code on long-context tasks.

Recursive Language Models give the model full autonomy to write its own memory scripts. LCM takes that power back, handing it to a deterministic engine that compresses old messages into a hierarchical DAG while keeping lossless pointers to every original. Less expressive in theory, far more reliable in practice.

The results:

Their agent (Volt, on Opus 4.6) beats Claude Code at *every* context length from 32K to 1M tokens on the OOLONG benchmark. +29.2 points average improvement versus Claude Code's +24.7. The gap widens at longer contexts.

The implication is one we keep relearning from software engineering history: how you manage what the model sees may matter more than giving the model tools to manage it itself. Every agent framework shipping with "let the model figure it out" memory strategies may be building on the wrong abstraction entirely.

Paper: https://t.co/LtqS7pzmP4
Learn to build effective AI agents in our academy: https://t.co/LRnpZN7L4c
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Dimitry Nakhla | Babylon Capitalยฎ
Pat Dorsey Q4 25โ€™ 13F

Top 5 holdings: $ASML $DHR $AER $META $BKNG

Top Buys: $ASML $LYV

Top Sales: $GOOG
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Source: Dataroma https://t.co/0goczNq4th
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Javier Blas
The Iranian read-out sounds upbeat:

โ€œWe were able to reach broad agreement on a set of guiding principles, based on which we will move forward and begin working on the text of a potential agreement.โ€ โ€” Iran's Foreign Minister Abbas Araghchi

OIL MARKET: The 2nd round of US-Iran talks has concluded, and Iranian media says there would be a 3rd round of negotiations in the โ€œnear futureโ€ after both sides consult with their respective governments.
- Javier Blas
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Bourbon Capital
Chris Hohn still buying more $SPGI

Chris Hohn - TCI Fund Management Q4 2025 https://t.co/8r8I9llt5e
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Moon Dev
be careful of openclaw!!

i lost $242,328 before my 6th openclaw was launched

grateful to have learned

I really dont want you to make the same mistake https://t.co/YWNKoTGjMb
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God of Prompt
RT @godofprompt: 84% of developers use AI coding tools daily.
25% of new startups ship codebases that are almost entirely AI generated.

But here's the stat nobody talks about: AI assisted developers produce 3-4x more code... and 10x more security issues.

Your vibe coded app isn't broken. It's unfinished.

Here's the gap nobody's solving (and why it matters now): ๐Ÿงต
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Giuliano
I always remember something Singleton said in one of his last interviews:

โ€œIf everyone else is doing them, then there must be something wrong with themโ€

https://t.co/AGcvbWenJV
- Sidecar Investor
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