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StudentJob zoekt een stagiair voor een data-gedreven opdracht in Eindhoven. Je vertaalt ERP- en leverancierslogistiek data naar inzichten en voorspellingen die vroege waarschuwingen genereren.
Deze stage biedt hands-on ervaring met data-analyse, voorspellende modellering en AI-toepassingen in een supply chain context, met focus op visualisatie en besluitondersteuning.
Translate data from ERP systems and supplier logistic escalation dashboard to predict parameter optimization, thereby creating an early warning system
The objective of this assignment is to develop a data-driven early warning system by translating and integrating data from ERP systems and supplier logistics escalation dashboards. This should be done by using Artificial Intelligence (AI) to identify key performance drivers, predict potential disruptions, and trigger early warnings. By applying predictive analytics and optimizing critical parameters, the assignment aims to proactively prevent logistics issues and improve overall supply chain performance and decision-making.
Currently, Frencken is performing a root cause analysis to identify recurring issues in supplier logistics and supply chain performance using ERP data and escalation dashboards (in a dedicated assignment). While this analysis provides insight into historical problems, it remains primarily reactive. This assignment builds on these findings by translating identified patterns and drivers into a proactive, data-driven approach, aiming to predict disruptions and trigger early warnings, possibly using AI for this.
Learning Outcomes for the Intern
In overeenstemming
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