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DTSTART:20261101T010000
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DTSTART:20260308T030000
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DESCRIPTION:Health system AI is moving from scattered pilots toward a smaller set of use cases that can be measured\, governed\, and scaled. The proven ground still skews administrative\, but the portfolio is broader: ambient documentation\, patient flow\, staffing\, and clinical decision support each carry different evidence standards and risks. Moving from pilot results to enterprise value takes clear ownership\, trusted data\, and the discipline to stop funding what is not working.\n\nThis Session Will Examine:\n\n• Where AI is producing repeatable returns today: revenue cycle\, coding\, ambient documentation\, patient flow\, and staffing.\n• The clinical frontier and its higher bar: triage and decision support\, where evidence\, liability\, and oversight change the scaling math.\n• Workforce effects beyond efficiency: documentation relief\, virtual nursing\, redeployment versus reduction\, and clinician trust.\n• What separates enterprise results from pilot activity: workflow integration\, data quality\, and clear ownership.\n• Governance for a growing footprint: regular review\, sunset criteria\, and redirecting spend when results fall short.\n\n
X-ALT-DESC;FMTTYPE=text/html:<div style="text-align: justify;">Health system AI is moving from scattered pilots toward a smaller set of use cases that can be measured, governed, and scaled. The proven ground still skews administrative, but the portfolio is broader: ambient documentation, patient flow, staffing, and clinical decision support each carry different evidence standards and risks. Moving from pilot results to enterprise value takes clear ownership, trusted data, and the discipline to stop funding what is not working.</div><div data-empty="true" style="text-align: justify;"><br /></div><div style="text-align: justify;"><strong>This Session Will Examine:</strong></div><ul style="list-style-type: disc;margin-left: -0.25in;"><li style="text-align: justify;">Where AI is producing repeatable returns today: revenue cycle, coding, ambient documentation, patient flow, and staffing.</li><li style="text-align: justify;">The clinical frontier and its higher bar: triage and decision support, where evidence, liability, and oversight change the scaling math.</li><li style="text-align: justify;">Workforce effects beyond efficiency: documentation relief, virtual nursing, redeployment versus reduction, and clinician trust.</li><li style="text-align: justify;">What separates enterprise results from pilot activity: workflow integration, data quality, and clear ownership.</li><li style="text-align: justify;">Governance for a growing footprint: regular review, sunset criteria, and redirecting spend when results fall short.</li></ul>
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SUMMARY:Scaling Healthcare AI: Margin\, Workforce\, and Operations
DTSTART;TZID=America/New_York:20260827T150000
DTEND;TZID=America/New_York:20260827T155000
DTSTAMP:20260708T225006Z
TRANSP:OPAQUE
STATUS:CONFIRMED
SEQUENCE:0
LOCATION:https://us06web.zoom.us/j/2237646017
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