Senior Manager, Quality Data Analytics (Hyderabad)

Senior Manager, Quality Data Analytics (Hyderabad)

18 Aug
|
Vertiv Energy
|
Hyderabad

18 Aug

Vertiv Energy

Hyderabad

Role Purpose

Serves as the analytics subject matter expert for Quality & Continuous Improvement across EMEA, owning the design, development, and evolution of the EMEA-wide performance analytics architecture. Translates complex operational data into strategic insights that drive decision-making at senior leadership level. Acts as the bridge between business stakeholders and data defining what to measure, how to measure it, and what it means.

Key Responsibilities

Analytics Architecture & Strategy

- Design and own the EMEA Quality & CI KPI architecture — defining metrics, hierarchies, calculation logic, and data lineage across all Business Units
- Establish standardised KPI definitions (Customer Claims, FPY, COPQ, Warranty, VoC, Supplier Quality) to enable consistent EMEA-wide comparison
- Define the analytics roadmap for the function, identifying where advanced analytics, process mining, and AI-enabled approaches can add value
- Architect the data model underpinning EMEA Quality & CI reporting — ensuring scalability, accuracy, and maintainability

Insight Development & Stakeholder Advisory

- Develop and present monthly operating review analytics to senior leadership — translating data into narrative, identifying root causes, and recommending actions
- Partner with BU Quality leaders to define leading indicators and predictive analytics that shift the function from reactive to proactive
- Conduct deep-dive analyses on quality trends, warranty patterns, and supplier performance to surface systemic issues
- Provide data-driven recommendations to Senior Director and VP-level stakeholders on performance improvement priorities

Platform & Capability Development





- Design and build Power BI dashboards and reports that serve as the single source of truth for EMEA Quality & CI performance
- Define requirements for data pipelines and integrations (SAP, Snowflake, other source systems)
- Evaluate and implement process mining tools (Celonis or equivalent) to identify inefficiencies in quality processes
- Drive automation of manual reporting — target 50% reduction in manual effort within 12 months
- Develop reusable templates, calculation logic, and self-service analytics capabilities for the broader Quality team

Governance & Data Quality

- Own the data governance framework for Quality & CI analytics — defining data ownership, refresh cadences, validation rules, and exception handling
- Establish and maintain data quality standards; monitor and resolve discrepancies across source systems
- Lead 8D maturity tracking methodology — defining scoring criteria and reporting dashboards

Required Skills & Experience

Technical (Must-Have)

- Expert-level Power BI development (complex DAX, data modelling, row-level security, deployment pipelines)
- Advanced SQL (query optimisation, stored procedures, complex joins across large datasets)
- Data modelling and warehouse concepts (star schema, fact/dimension design)
- Experience with process mining platforms (Celonis preferred)
- Working knowledge of SAP data structures (QM, MM, SD modules)

Technical (Preferred)

- Power Platform (Power Automate, Power Apps) for workflow automation




- Python or R for statistical analysis
- Experience with Snowflake or similar cloud data platforms
- AI/ML-enabled analytics (anomaly detection, predictive quality)

Functional

- 10–15 years of experience in data analytics, business intelligence, or performance management
- Demonstrated experience designing KPI frameworks and analytics architectures from scratch
- Experience presenting to and advising senior leadership (Director+ level)
- Understanding of Quality management systems, manufacturing KPIs, and operational excellence principles
- Experience working in global matrix organisations across multiple time zones

Behavioural

- Strategic thinking — ability to see the "so what" behind the data and connect analytics to business outcomes
- Stakeholder management — comfortable challenging senior leaders with data and influencing without authority
- Ownership mindset — treats the analytics platform as their product, drives quality and continuous improvement unprompted
- Structured communication — can distil complex analysis into explicit, actionable narratives for non-technical audiences

Education

- Bachelor's degree in Engineering, Data Science, Statistics, Computer Science, or Business (required)
- Master's degree or MBA (preferred)
- Success Measures (First 12 Months)
- Single EMEA Quality & CI dashboard live and adopted by all BUs
- Standardised KPI definitions agreed and implemented across EMEA
- 50% reduction in manual reporting effort
- Monthly operating review analytics cadence established
- 8D maturity tracking methodology defined and dashboard deployed
- Process mining pilot completed for at least one quality process

📌 Senior Manager, Quality Data Analytics (Hyderabad)
🏢 Vertiv Energy
📍 Hyderabad

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