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Event starts in:
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until the summit begins

August 26, 2026
Conrad Los Angeles
100 S Grand Ave
Los Angeles

Live
workshops

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11:00 - 12:30, 26 August 2026
Duration:
90 mins
Workshop | Google skills - Introduction to Gemini 3.0
The Gemini Pro model is a versatile model designed to process text, code, and images. It handles complex tasks requiring sophisticated reasoning and multimodal analysis. Gemini excels in coding, STEM subjects, web development, and debugging. It's particularly effective for generating code and resolving nuanced prompts. The Gemini Flash model is a fast, efficient model optimized for high-frequency workflows, enabling enterprises to automate tasks and build responsive applications without sacrificing quality. It delivers near real-time responses and superior price performance, allowing businesses to provide engaging, production-scale experiences. In this lab, you run examples that demonstrate key model capabilities and showcase new API features.
Muhammad Farooq, Google
13:30 - 14:30, 26 August 2026
Duration:
60 mins
Roundtable | From AI pilots to autonomous engineering: What it takes to put agentic systems into production
Let’s discuss the PoC-to-Production Engineering Gap. AI leaders are under pressure to move beyond prompt-driven tools, generative chat interfaces and proofs of concept, but most agentic initiatives stall before reaching production. Today, we aim to talk about what is actually working in production and where autonomous workflows struggle to deliver tangible value and fall short of fully replacing human execution. We know success requires reliable orchestration, AI-ready data, robust evaluation frameworks, cost controls, governance, and engineering teams that can balance applying expert and institutional judgment with the automation capabilities of AI. So let’s discuss the orchestration layers and guardrails required to manage access controls and permissions for autonomous software pipelines without choking innovation. And let’s see how y'all are building the practical operating models needed to scale AI from experimentation to measurable business impact.
Jocelyn Sexton, Growth Acceleration PartnersPaul Brownell, Growth Acceleration Partners
14:30 - 15:00, 26 August 2026
Duration:
30 mins
Workshop | Cloud immune system: A bio-Inspired AI framework for autonomous cloud security
Modern cloud environments face increasingly sophisticated cyber threats that often require continuous human monitoring and manual response. This presentation introduces the Cloud Immune System, a bio-inspired security framework that applies concepts from the human immune system to cloud cybersecurity. By combining artificial intelligence, behavioral analytics, and automated response mechanisms, the framework can detect abnormal activities, assess potential threats, and respond automatically before they spread across the cloud environment.
Pushpjeet Shrivastava
15:30 - 16:30, 26 August 2026
Duration:
60 mins
Workshop | Simulating human emotion at scale: How swarm AI predicts what polls and sentiment tools cannot
Most AI systems treat every piece of data as equal. But in reality, not every voice carries the same weight. A panicked Reddit post and a considered expert opinion get counted the same, so teams end up reacting to noise instead of signal. In this session, you’ll see what happens when you model this properly. Through a live demo of MiroFish, a swarm intelligence engine powered by thousands of AI agents, you’ll watch how different audience types respond to the same input and which ones actually predict real-world outcomes. Each agent is calibrated to reflect real demographic and behavioural profiles, allowing you to separate what drives attention from what drives impact. Using the Bad Bunny Super Bowl campaign as a case study, you’ll see the gap play out in real time. While social platforms called it a failure, the system predicted amplification and the results followed: 66M views, a sevenfold jump in streams, and a number one Billboard ranking. This isn’t just about marketing. You’ll leave with a clear framework for: → Distinguishing signal from noise in large-scale datasets → Understanding which audiences actually drive outcomes → Applying multi-agent simulation to product launches, policy decisions, and adoption forecasting → Moving beyond surface-level sentiment to more reliable prediction models The shift is simple: stop listening to everything equally and start modelling what actually matters.
Vanchhit Khare, M&T Bank

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