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Podcast Episode

Measuring the Environmental Footprint of LLM Inference [Episode 34]

NextGen Science Hub··17 July 2026·22 min

About this episode

This episode explores the complex relationship between artificial intelligence and environmental sustainability. Discover how AI is helping stabilize renewable energy grids, improve forecasting accuracy, and reduce energy waste to support the global transition to clean power. At the same time, examine the hidden environmental costs of large-scale AI systems, including their carbon emissions, water consumption, and growing energy demands. The discussion also addresses the Jevons Paradox, revealing how efficiency gains can unintentionally increase overall resource use. Ultimately, this episode highlights why the future of sustainable technology depends not only on smarter algorithms, but also on responsible infrastructure, energy-efficient data centers, and thoughtful innovation.