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Each weekday, Lucas and Luna parse the rapidly shifting landscape of large language models, generative AI, and the productivity tools reshaping how knowledge workers operate. Far from hype cycles and breathless product-launch coverage, the show anchors every conversation in measurable adoption rates, actual enterprise deployment patterns, and the economic trade-offs between proprietary and open-weight models. Lucas draws on his background in tech journalism to frame the macro picture — regulatory signals from Brussels and Washington, capital flows into foundation-model startups, the talent-market squeeze for ML engineers. Luna counterbalances with a practitioner's eye: she presses on real-world integration costs, latency budgets, and the uneven performance of today's models across languages and specialized domains. Together they dissect a named open-source release or a corporate AI strategy announcement each episode, weighing benchmarks against use-case reality. The listener is not a c
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