The Bubble Most Will Get Wrong | Aswath Damodaran on How He Is Investing in a World of AI
In this episode of Excess Returns, Professor Aswath Damodaran joins Matt Zeigler and Kai Wu for a wide-ranging conversation on valuation, portfolio construction, and how investors should think about risk, discipline, and opportunity in a market shaped by AI, market concentration, and rising uncertainty. Damodaran walks through how he builds and manages his own portfolio, why price matters more than story or quality, and how AI-driven capital spending could reshape margins and returns across the economy. The discussion blends practical investing frameworks with big-picture market insights, offering a clear look at how a valuation-driven investor navigates today’s environment. Main topics covered • How Aswath Damodaran builds a stock portfolio, including diversification, position sizing, and turnover • Why investing is about buying at the right price, not buying great companies • Using valuation frameworks to invest in young, unprofitable, and fast-growing companies • How stories and narratives fit into valuation without replacing financial discipline • Watchlists, patience, and waiting for price rather than chasing popular stocks • Sell discipline, overvaluation triggers, and avoiding emotional attachment to winners • Using probability distributions and simulations instead of single-point estimates • How company lifecycles affect growth, margins, and capital allocation decisions • Why many companies struggle as they age and how management quality shows up late in the lifecycle • AI as a capital cycle and why massive AI investment may lower margins overall • Why AI is likely to create a bubble, even if it delivers long-term economic value • Winners and losers in the AI value chain, from infrastructure to applications • Risks from AI infrastructure spending, debt, and cross-ownership structures • Why private markets may not deliver better outcomes for individual investors • How Damodaran thinks about cash, diversification, and assets uncorrelated with equities • Reentering markets after selling and avoiding the trap of staying in cash too long • Time horizon, legacy investing, and managing wealth across generations More Videos About Long-Term Compounding and Finding Great Stocks https://www.youtube.com/playlist?list=PLOPDD0ChIJDjbUOxtjHodSXCu7iq4ViqI Timestamps 00:00 Investing is about price, valuation, and early thoughts on AI and market risk 01:54 Personal investing philosophy and why portfolios must be investor-specific 03:00 Diversification, number of holdings, and managing downside risk 05:00 Valuation frameworks and buying companies at the right price 06:00 Stories versus numbers and avoiding the circle of competence trap 08:20 Political risk and why some sectors are hard to value 08:47 Watchlists, patience, and waiting for price to meet value 11:43 When and why to sell stocks as a value investor 12:00 Using probability distributions and simulations in valuation 15:48 Sell discipline, fund flows, and separating skill from luck 18:00 Company lifecycles, aging businesses, and management discipline 23:18 Apple, Meta, and contrasting approaches to AI investment 24:08 AI bubbles, winner-take-all dynamics, and capital cycles 27:48 Infrastructure investing, debt risk, and societal spillovers 32:20 Cross-ownership risks and AI ecosystem fragility 35:00 AI’s impact on profit margins and competition 39:41 Where AI value may accrue over time 44:38 AI tools, valuation bots, and the rise of investment scams 49:17 Private markets, alternatives, and cost structures 53:05 Cash, collectibles, and diversification beyond equities 56:33 Reentering markets after selling and avoiding market timing traps 58:35 Time horizon, legacy investing, and generational wealth
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Aswath Damodaran's core investing philosophy: buy undervalued companies at the right price, not great companies.
- Damodaran argues investing is about buying at the right price rather than buying great companies or superior management, and this principle animates almost every one of his choices.
- He holds 30 to 45 stocks because he invests in younger companies and lacks enough confidence to concentrate in four or five names, noting that 40 out of 45,000 publicly traded companies is still being incredibly picky.
- His turnover is only three or four stocks a year, and he avoids companies where politics drives value more than business, such as government-subsidized green energy, because he admits he is not good at political assessment.
The watch list process and how Damodaran tracks both value and price over time.
- Damodaran keeps a running watch list of fascinating companies like Mercado Libre and Palantir, revisiting valuations until price reaches the right point, which is how he ended up owning five of the Magnificent Seven stocks.
- He tracked Tesla from 2013 to 2018 liking the company but not the price, then bought in 2019 after the 'funding secured' episode collapsed the stock to what he considered the right price.
- The essence of investing, he says, is keeping your eyes on both sides of the divide: what is the value and what is the price.
Sell discipline, Monte Carlo valuation, and why buy-and-forget contradicts value investing.
- Damodaran argues that if you buy because something is 25% undervalued, you should also sell when it becomes 30-40% overvalued, so there needs to be a trigger on both sides.
- He uses Monte Carlo simulations to generate a distribution of values rather than point estimates, letting him buy at the 30th percentile for a margin of safety and sell at the 70th percentile.
- He notes that investors hold losers and winners too long because falling in love with stocks that did well makes it hard to let go, so automating the sell decision removes that difficulty.
關鍵概念
- buy at the right price— Damodaran's core investing principle: it's not about buying great companies but buying at the right price.
- AI bubble— His prediction that collective AI infrastructure investment will have a negative net present value even if one or two winners emerge.
- diversification— Holding 30-45 stocks to avoid serious damage, driven by risk aversion and wealth preservation.
精選金句
Investing is about buying something at the right price. It's not about buying great companies. It's not about about buying superior management. It's about buying at the right price.
💡— Overturns the common belief that investing is about finding great companies or great management, reframing it purely as a price discipline.
Collectively though, if you take all of these companies that are spending tens of billions of dollars, they're going to step back and that collective investment is going to have a negative net present value.
🤯— Reveals that even if AI has a few big winners, the collective investment by all companies will destroy value, a hidden truth about bubble economics.
可執行的洞察
📈Investing Philosophy
Investing is about buying at the right price, not about buying great companies or superior management.
This week, pick one stock you own and write down the price at which you would sell it, then set a limit order.
Diversification across 30-45 stocks protects against serious damage to your lifestyle and family.
Review your portfolio and ensure no single stock exceeds 5% of your total holdings; if it does, trim it.
🤖AI and Bubbles
Collective AI infrastructure investment will likely have a negative net present value even if one or two winners emerge.
Avoid investing in debt-funded AI infrastructure companies; instead, look at B2B AI adopters with strong cash flows.
The big market delusion leads investors to overestimate their chances of picking winners in a hot sector.
Write down your thesis for any AI stock you own, including who the ultimate winner will be and why it's not just hype.
轉錄文字與 AI 洞察均由模型自動生成,可能存在少量誤差。辨識效果與音訊品質、語速及發音清晰度相關——若有內容看起來有誤,以原始音訊為準。
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