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Cloud Computing Insider

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Rating
★★★★★
5
from
4 reviews
This podcast has
108 episodes
Language
English
Explicit
No
Date created
2024/06/14
Latest episode
2026/02/02
Average duration
17 min.
Release period
5 days

Description

Hosted by cloud computing pioneer David Linthicum, the Cloud Computing Insider podcast gets to the bottom of what cloud computing, and generative AI can bring to your enterprise. New content will focus on what's important to you as a user of cloud computing and generative AI, and the ability to find value the first time.

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Check latest episodes from Cloud Computing Insider podcast


The Cloud Security Crisis No One Wants to Admit—61% Failure Rate
2026/02/02
In this crucial video, cloud security leader David Linthicum exposes a troubling statistic: 61 percent of cloud security incidents are completely preventable. Drawing on the latest security research, David reveals the most common—and avoidable—mistakes that leave enterprises vulnerable to cyberattacks, data leaks, and compliance violations. He breaks down the top culprits, from misconfigured cloud environments and weak access controls to lapses in ongoing monitoring and lack of employee training. David explains why organizations often falter on basic security hygiene and shows how these oversights create easy targets for attackers. Importantly, he translates these findings into actionable solutions. Viewers will learn why regular audits, continuous education, and automated security tools are critical for reducing risk, and how building a security-first culture can close the door on costly incidents. Packed with practical advice, this video gives IT leaders, security professionals, and business executives a blueprint for dramatically improving their organization's cloud security. Don't let your company become another statistic—discover how to avoid the 61 percent of incidents that should never happen, and transform the cloud from a weak spot into your enterprise's strongest line of defense.
Azure Softness + AI Capex = The Public Cloud's New Problem
2026/02/01
Why did Microsoft stock drop even after a headline beat? In this episode, cloud analyst David Linthicum breaks down the market's "beat-and-drop" reaction to Microsoft's latest earnings and what it signals about Azure, AI, and hyperscaler spending. He explains how expectations for a clear cloud re-acceleration collided with guidance that sounded more like "we're investing ahead of demand," raising concerns about capital intensity and near-term margins. Linthicum walks through the optics around Azure growth, capacity build-outs for AI training and inference, and why investors are increasingly sensitive to capex without fast operating leverage. The conversation also explores a structural shift in enterprise cloud choices—hybrid, private and sovereign cloud, colocation, and managed service providers—and how workload economics (egress, governance, and consumption creep) can make public cloud less attractive for steady-state compute. Finally, he balances the bear case with the bull case: Microsoft's distribution advantage across Microsoft 365, security, and developer tools, and the possibility that today's spend is strategic moat-building. If you want a clearer framework for reading cloud earnings, this video delivers. You'll learn what metrics to watch next quarter, how to interpret "capacity constraints" versus demand, and where AI monetization may show up first in pricing, usage, and margins.
Why the Tech Industry Keeps Lying to Itself (and You)
2026/01/26
The tech industry is brilliant at building new things—and terrible at admitting when it gets them wrong. In this video, I break down why our predictions about cloud, AI, big data, blockchain, metaverse, and more so often miss reality by a mile. From wildly optimistic analyst forecasts (including early cloud growth predictions that were way off) to vendor-driven hype cycles, we've built a system that rewards confidence, not accuracy.   I walk through concrete examples where the narrative sounded irresistible, the slideware looked perfect, and the pilots seemed promising—but large enterprises never followed at scale. The core problem isn't intelligence or innovation; it's confirmation bias, misaligned incentives, and a complete underestimation of real-world constraints: legacy systems, budgets, regulation, skills, and risk.   You'll learn how to recognize the telltale signs of hype, how to separate "cool demo" from "sustainable value," and how to ask the uncomfortable questions that cut through the noise. Whether you're a CIO, architect, engineer, or business leader, my goal is simple: help you stop getting pushed around by tech narratives—and start making grounded, reality-based decisions. If you're tired of being sold "the future" that never quite arrives, this video is for you.
Agentic AI Playbook Spam: Why "Proven" Agentic AI Frameworks and Strategies Are Not Working
2026/01/22
In this video, David Linthicum breaks down the sudden explosion of "agentic AI" playbooks, frameworks, and branded platforms now pouring out of the consulting industry. Every big firm wants to look like it owns the future of autonomous work, so the market is being flooded with glossy diagrams, maturity models, and "fast paths" that promise cheap, repeatable success—sometimes with language that feels close to a guarantee. But agentic AI is not a plug-in. It's an architecture, and architecture only works when it matches your processes, data quality, controls, integration realities, and operating model. When frameworks lead with the platform instead of the problem, enterprises end up force‑fitting agents into brittle systems, over-building orchestration layers, and running old processes in parallel "just in case." The hidden costs show up later: governance overhead, constant tuning, fragile pilots, and disappointing ROI. You'll learn the red flags to watch for, the questions to ask before funding an "agentic transformation," and how to pursue smaller, measurable wins without buying expensive theater. If you're a CIO, CTO, or business leader, this is your reality check before the next deck lands in your inbox. We'll also discuss when simpler automation beats agents—and when agents earn their keep.
Big Tech Is PANICKING Over NAS
2026/01/19
Network-attached storage (NAS) is a dedicated, always‑on storage device that connects to your home or office network and lets multiple users and devices store, share, and back up data to a central box you physically own. In effect, it's your own private cloud: instead of renting space from iCloud, Google Drive, OneDrive, or AWS, you buy a NAS once and control the hardware, the capacity, and who can access it. This model is growing quickly; the global NAS market is already tens of billions of dollars in annual sales and is projected to roughly triple over the next decade, driven by exploding photo, video, and backup needs. Just as important as capacity is cost: a mid‑range NAS with several terabytes of usable storage often runs around  500– 600 upfront, a figure that can undercut years of recurring cloud fees for 2–6 TB plans. Many consumers and small businesses are discovering that, at larger data sizes, NAS becomes cheaper over a three‑to‑five‑year horizon. And because the data lives on devices you own—often protected by encryption, redundancy, and local access controls—NAS is increasingly seen as a way to improve privacy, security, and peace of mind compared to relying solely on third‑party clouds.
Big Cloud's Default Trap: How Apple, AWS, Google, and Microsoft Capture Your Data
2026/01/15
Big Tech says it's "backup," "sync," and "convenience"—but what happens when your computer quietly starts moving your personal files into the cloud by default? In this episode, David Linthicum breaks down a growing industry pattern: technology providers designing defaults that automatically capture your data, route it into their storage platforms, and make that choice feel inevitable. We start with the Microsoft Windows 11 upgrade experience, where many users discover Desktop, Documents, and Pictures being pushed into OneDrive through folder redirection and persistent prompts—often without a clear, informed decision at setup. From there, we connect the dots to Apple's iCloud, where "it just works" can also mean "it just uploads," and to Google's Drive-first ecosystem that normalizes cloud storage as the primary home for files. Finally, we revisit AWS and the long-running idea that computing is something you rent—not own—turning the PC into a subscription and your data into recurring revenue. This isn't an anti-cloud rant: cloud storage can be genuinely useful. The issue is default capture, confusing consent, lock-in economics, and the shrinking space for truly local-first computing. If your files are your property, why do vendors treat them like a product funnel?
Why Serverless Is Just Lock-In with Better Branding
2026/01/12
Serverless is marketed as "no servers, no ops, just code"—but that convenience hides a deeper tradeoff: long-term freedom. In this video, I break down how platforms like AWS Lambda, Google Cloud Functions, and Firebase quietly lock you into a single provider, not through the language you write in. Still, through the glue you adopt: event formats, IAM models, triggers, logging, deployment pipelines, and tightly coupled managed services.   We'll look at where lock-in really lives architecturally, why leaning hard into proprietary auth, queues, databases, and logging can turn your system into a beautiful cage, and how to avoid that without giving up the speed that makes serverless attractive in the first place. You'll learn practical patterns like hexagonal/onion architecture, keeping business logic pure and side-effect-free, pushing cloud-specifics to the edges, and wrapping provider APIs behind your own interfaces for storage, messaging, and identity. I'll also cover strategies for keeping your data portable and planning for the day you might need to change clouds—or run on bare metal.   Serverless isn't the enemy. Blind trust is. Use the cloud's superpowers, but design as if you'll have to leave.
The AI Native Cloud Trap: How AWS, Azure & Google Lock You In
2026/01/05
Cloud providers are quietly rebuilding their platforms around generative AI—and dragging you along for the ride. In this episode of Cloud Computing Insider, Dave breaks down how AWS, Azure, and Google Cloud are shifting from general‑purpose cloud to AI‑native cloud, where everything is optimized (and monetized) around GPUs, proprietary models, and tightly integrated AI services. We'll look at why this is happening now, how it shows up in your architecture and your bill, and why "AI‑ready" often really means "AI‑locked‑in." From exploding inference costs to agentic AI baked into workflows, you'll see how the defaults are being stacked in the providers' favor. But this isn't just a rant—we'll also explore your options. Do you lean into the hyperscalers' AI platforms, or start carving out room for AltClouds like private, sovereign, and MSP‑run clouds that aren't rebuilding everything around AI? How do you keep data, models, and architecture portable enough that you still have real choices in three years? If you care about cloud costs, control, and long‑term flexibility, this is the AI/cloud conversation you actually need to hear.
RIP Cloud Computing Centers of Excellence (CCoE)
2025/12/29
Cloud Centers of Excellence were supposed to save your cloud strategy—yet in most enterprises, they've become the single biggest bottleneck. In this video, David Linthicum takes a brutally honest look at why so many CCoEs have devolved into "Cloud Centers of No," strangling innovation while pretending to provide governance. We'll dissect how these committees burn time, money, and engineering talent with endless review boards, PDFs, and politics, all while claiming to be "best practice."   But this isn't just a rant; it's a blueprint. David lays out exactly how to blow up the gatekeeper model and rebuild your CCoE as a lean, product-focused cloud platform team that developers actually want to use. You'll learn how to replace manual approvals with automated guardrails, static standards with living golden paths, and ivory-tower architects with embedded, hands-on experts. If you suspect your CCoE is more theater than value, this video will give you the language, arguments, and patterns to force a reset—and turn cloud governance from a tax into a competitive advantage.  
Cloud News 2025: What Actually Mattered
2025/12/26
In his "Cloud Computing Year in Review," David Linthicum offers a clear, opinionated look at how the cloud landscape has actually changed versus what was just hype. He situates these developments within the broader history of cloud, showing which "new" ideas are actually rediscoveries of long standing architectural principles. He walks through the major trends of the year – from the rise of multi cloud and FinOps to the deep integration of AI, data, and cloud native architectures – and explains what they mean in practical terms for enterprises. Rather than simply listing technologies, Linthicum focuses on business impact: cost optimization, complexity management, governance, and the ongoing struggle to modernize legacy systems. He highlights where cloud providers delivered real innovation, where they fell short, and how issues like security, resilience, and skills gaps shaped real world adoption. Throughout, his tone is pragmatic and slightly skeptical, cutting through marketing buzz to emphasize architecture, operations, and value realization. The review closes by outlining what IT leaders should carry into the coming year: a stronger focus on measurable outcomes, smarter use of multi cloud, tighter alignment between cloud strategy and data/AI strategy, and a renewed emphasis on talent and culture as key enablers of successful cloud transformation. Since you didn't specify a particular year, this is written to fit his typical annual "year in review" style. Would you like me to tailor this to a specific year or adjust the tone for an academic or professional audience?
Somebody Is Lying About Agentic AI Adoption—and You're Paying for It
2025/12/22
This video takes a hard look at the messy truth behind agentic AI in the enterprise — and why it feels like someone is lying to you. On one side, big tech vendors, cloud providers, and global consultancies are screaming that "2025 is the year of the AI agent," boasting about customers "deploying thousands of agents" across customer service, IT operations, and back‑office functions with massive efficiency gains. On the other side, independent analysts and people actually building this stuff say most organizations are still stuck in early pilots, that real value is limited to a narrow set of tightly scoped workflows, and that a lot of what's sold as "agents" is just old automation with an LLM slapped on the front. In this video, I unpack those two conflicting narratives, show where each one is coming from, and explain why the hype machine has such a strong incentive to tell you the revolution is already here. We'll talk about agent washing, the lack of standards, and the very real risk of a trust crash between enterprises and their technology providers. If you're tired of being sold a future as if it's already reality, this one's for you.
Inside the Mind of a Cloud Hero: Sebastian's Strategic Repatriation
2025/12/18
In this compelling video conversation, David Linthicum sits down with Sebastian Mondragon, CEO of Particula Tech, to explore the practical journey of repatriating enterprise workloads from public clouds back to on-premises or hybrid environments. With candor and technical depth, Sebastian shares his firsthand experience leading AI-driven businesses through the complexities of cloud repatriation—highlighting why it's not just a cost-saving measure, but a strategic move toward control, scalability, and compliance. Viewers gain actionable insights as Sebastian breaks down the challenges organizations often encounter in public cloud settings, from ongoing operational expenses to rigid infrastructure limitations and increasing scrutiny around data sovereignty. He details the systematic approach his team used to identify which workloads truly benefit from cloud versus which are more efficient and secure in-house. Throughout the discussion, Sebastian and David tackle the nuances of migration planning, risk management, and performance optimization. They emphasize the importance of understanding core business needs and the limitations of "one-size-fits-all" cloud solutions. The conversation also highlights how explainability and transparency—key values at Particula Tech—inform every decision. This video is essential viewing for IT leaders considering their own repatriation projects or aiming to make more informed decisions in their cloud strategies.  
Ask Linthicum: No-Bull Cloud Q&A
2025/12/15
Step into the heart of cloud computing as industry legend David Linthicum takes the hot seat on a special Q&A episode of The Cloud Computing Insider podcast. In this no-holds-barred session, David pulls back the curtain on the biggest myths, challenges, and game-changing trends that are shaping the cloud landscape today. Listeners submitted their most pressing—and sometimes controversial—questions, and David doesn't shy away from any of them. Whether it's cloud migration headaches, the real impact of AI on cloud strategies, security nightmares, or vendor lock-in fears, David tackles it all with his signature candor, humor, and deep expertise. This episode is a must-watch for IT leaders, cloud architects, and anyone who refuses to settle for buzzwords and wants real, unfiltered insights. Expect straight talk, surprising revelations, and actionable advice you won't find anywhere else. Whether you're just starting your cloud journey or are a seasoned pro looking for a fresh perspective, David's answers will challenge the status quo and leave you rethinking your approach to the cloud. Don't miss this rare opportunity to hear David Linthicum answer your questions—raw, real, and relevant—on The Cloud Computing Insider.  
The Great GPU Scam: Why Your Cloud AI Budget Is Getting Robbed
2025/12/08
Aggressively pursuing GPU adoption—whether in the cloud or on-premises—often leads organizations straight into costly traps. A surprising amount of infrastructure is chronically overprovisioned, with organizations buying or renting more GPU power than they'll ever use "just in case." This overkill results in idle or underutilized GPUs that drain budgets, mirroring the same wasteful patterns in both environments. Most enterprise workloads don't even need GPU acceleration, but the current industry hype pushes adoption far beyond what actual business goals require. Making matters worse, soaring GPU prices aren't delivering transformative returns for mainstream use, meaning costs rise faster than the benefits. The common claim that cloud pay-as-you-go solves utilization issues is misleading: many companies simply leave pricey instances running, wasting just as much as they do on underused hardware racks. Only persistent, compute-intensive tasks like AI/ML training truly justify ongoing GPU investment. The bottom line: Regardless of environment, only strong governance, real-time observability, and right-sized, hybrid strategies truly control spend and prevent waste. Without tight oversight, both clouds and datacenters fall victim to the same needless overspending.
AWS AI Agents: Innovation or Just Keynote Theater?
2025/12/05
In this video, I'm going to unpack what I see as the bad side of AWS's latest AI push at re:Invent—specifically around agents and mega‑scale infrastructure.   You'll hear a lot of polished narratives about "frontier agents," AgentCore, and AI Factories as if they're turnkey answers to every enterprise AI problem. I'm going to challenge that. To me, much of this feels like a rushed, "me too" sprint into the agentic hype cycle—an attempt to keep up with the fast followers rather than a confident, opinionated vision from the market leader. And when AWS looks reactive, it looks weaker than it actually is.   We'll talk about where branded agents like Kiro, the Security Agent, and the DevOps Agent risk becoming keynote theater instead of durable tools. We'll dig into why AgentCore may be more abstraction tax than simplification. And we'll look at AI Factories and ask whether most enterprises are really ready to run their own mini‑AWS in a basement. If you're trying to separate signal from marketing noise, stay with me.  

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5 out of 5
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Tech Is Good 2024/07/27
The one place to go for the realities of cloud computing
This is a rare podcast that really tells the truth about how this technology works. I like the candid nature of the discussion and that they don’t see...
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