Forecast whether an incident is likely to escalate to a major incident by using machine
learning to analyze real-time data and historical patterns. Use the resulting risk scores to
initiate response protocols early and reduce business impact.
Required Editions
Available in: Lightning Experience
Available in: Enterprise, and Unlimited Editions with Einstein for IT
Services add-on, and AI Accelerator for IT Services add-on.
From the App Launcher, find and select Incidents.
From the Incidents page, open a record.
In an incident record, navigate to the Major Incident Score card in the side panel.
Major Incident Score card displays the probability that the incident will escalate into a
major incident.
Review the predicted probability to assess the risk level, where a score of 0.08 indicates
a very low risk and a score of 98.28 indicates a high risk of escalation.
In the Top Predictors list, identify the factors influencing the score.
Use the feedback icons to help refine the machine learning model:
Select the Thumbs Up icon if the prediction is accurate.
Select the Thumbs Down icon if the prediction is incorrect.
Example:
Example
John, an IT Analyst at Cumulus Bank, triages support ticket influxes following firmware
updates. When warehouse operators can't log into handheld scanners, an incident record is
created with these details.
John opens the record and sees the Major Incident Prediction card with a score of 98.77. This
score indicates a near-certainty that the incident will likely escalate into a business-critical
event.
John reviews the top predictors list, powered by machine learning, to identify the risk.
Predictive AI identifies that the volume of high-priority tickets linked to this issue is the
primary driver for the high score. Additionally, historical patterns show that authentication
failures with local servers lead to significant shipping disruptions.
To maintain service reliability, John triggers the major incident response protocol. Using
data analysis from the major incident score, John ensures engineering and communications teams
prioritize the issue before the shipping disruptions occur. The team transitions to a proactive
response and reduces the business impact.
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