Case Studies
A global manufacturing enterprise initiated an Industry 4.0 program to enhance visibility, improve operational efficiency, and strengthen decision-making across multiple production facilities. The organization required a structured approach to digitization, beginning with shop-floor data and expanding toward a long-term digital foundation.
The leadership emphasized that any digital initiative must serve clear business objectives rather than being executed as a trend-driven exercise. Immediate priorities included digitizing factory operations and turning raw shop-floor data into meaningful insights. At the same time, the organization sought a scalable framework that would support future transformation efforts beyond factory operations alone.
A phased strategy was designed to build reliable, analytics-driven capabilities:
An audit was conducted across manufacturing locations to determine available data sources, identify gaps, and establish what additional data needed to be captured.
The manufacturing process was evaluated to determine where IoT-enabled sensors could be introduced or enhanced. Recommendations were made regarding sensor selection and integration within existing equipment and workflows.
Operational data flows into the ERP system were analyzed to detect inconsistencies between on-ground factory data and system-level records. A data quality review was completed with attention to governance and security requirements.
A centralized data warehouse was implemented on AWS to consolidate information from multiple systems and factory locations. Real-time operational data was integrated with the supply chain module of the ERP to provide unified visibility.
Data from diverse sources was brought together through automated pipelines, ensuring that all inputs were processed, transformed, and prepared for business intelligence and analytics use.
Models were developed to analyze operational costs, inventory patterns, resource utilization, capacity constraints, supply chain issues, and quality metrics. Customized dashboards provided stakeholders with role-specific visibility.
Using high-volume datasets, predictive models were created to assist in anticipating operational challenges and suggesting data-informed actions.
Insights were structured in an accessible format to ensure clear interpretation and widespread adoption across leadership and operational roles.
The initiative delivered several measurable improvements:
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