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Data Quality & AI Readiness Product Analyst

Hyderabad, Indien Regular Gepostet am   Jul. 31, 2026 Endet am   Aug. 31, 2026
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Job Title: Data Quality & AI Readiness Product Analyst

Job Location: Hyderabad Hub

Job Type: Fulltime/Permanent

About the Job

As a Data Quality & AI Readiness Product Analyst within the MDM Jobs/Skills Taxonomy team — part of Data Governance & Master Data Management — you will sit at the intersection of data governance, Human Capital technology, and process excellence. You will be a critical enabler of Sanofi's enterprise-wide skills-based organization initiative, ensuring that the skills and jobs data powering Workday's Skills Cloud, Career Hub, and AI-driven talent matching is trusted, complete, and AI-ready.

You will drive proactive risk management, resolve global data quality issues, and ensure our Human Capital data meets Sanofi's AI-Ready Data Framework standards — making it fit to power both operational decisions and the AI-driven innovation that underpins our mission to chase the miracles of science.

Main responsibilities

1. Investigation & Diagnosis

  • Assess and document downstream impact of Skills and Job Architecture data quality issues across payroll processing, management reporting, third-party integrations, and AI/machine learning model inputs

  • Monitor ongoing adoption of global data standards across regions, business units, and functional teams, with particular focus on Skills and Job Architecture taxonomy data consistency in Workday — proactively detecting and flagging the re-introduction of local deviations, non-standard values, or workarounds

  • Conduct structured root cause analyses to distinguish isolated errors from systemic issues requiring process or configuration-level intervention

  • Use Python scripting and SQL to conduct deep-dive data profiling and root cause investigations across Workday and Snowflake data assets

  • Build reusable investigation toolkits and diagnostic scripts to accelerate root cause analysis and reduce time-to-resolution across recurring issue patterns

  • Support organizational cloning and data standardization initiatives through fact-based investigation, evidence gathering, and data profiling — ensuring skills data is structured and clean for AI model consumption

  • Execute Data Analysis and Mapping for Workday Optimization and other relevant projects

2. Data Quality Engineering & Automation

  • Design and build automated Skills and Job Architecture data quality pipelines using Python to validate, profile, and monitor at scale, integrated into the Data Foundation (Snowflake)

  • Contribute to the design and implementation of data observability practices — including data lineage tracking, freshness monitoring, and schema validation — across the Skills and Job Architecture data domains

  • Build automated monitoring dashboards (e.g., Power BI) and alerting mechanisms to proactively surface data quality deviations before they impact downstream systems, enabling early resolution of cloning/standardization conflicts

3. Data Remediation & Execution

  • Develop and execute Python-based remediation scripts and automated correction workflows reducing reliance on manual EIB loads where technically feasible and accelerating remediation

  • Prepare, validate, and execute data correction actions and remediation loads (EIB, manual)

  • Partner closely with the Global Process Owner (GPO) and Workday Technology teams to define and implement structural fixes — whether through process redesign, system configuration changes, or governance policy updates — and deliver measurable improvement in priority data quality fields

4. Governance, Risk & Stakeholder Collaboration

  • Serve as a bridge between data operations and technical teams, translating business data quality requirements into actionable technical specifications aligned with MDM standards

  • Identify and escalate risks to data consistency, AI readiness, and global reporting accuracy at the earliest possible stage

  • Contribute to AI-Ready Data KPI scoring for the relevant data assets, including DQ rule coverage, quality scoring in Informatica CDGC, metadata cataloging, and data access classification

About You

Required Education, Experience & Skills

  • Degree in Information Systems, Data Engineering, Computer Science, Data Management, or a related field

  • 3–5 years of experience in data engineering, data quality, data governance, or a related analytical/technical role

  • Demonstrated hands-on experience building data pipelines, validation frameworks, or automation scripts in Python

  • Proven track record of conducting data investigations and delivering structured, actionable findings

  • Experience working in a global, matrixed organization with cross-functional stakeholders

  • Strong SQL skills for data profiling, investigation, and validation across large-scale HR datasets

  • Experience with big data technologies such as Snowflake

  • Experience building and maintaining ELT/ETL pipelines for data quality monitoring and remediation

  • Familiarity with data remediation processes, including mass data loads and EIB (Enterprise Interface Builder) or equivalent

  • Understanding of HR data domains: employee records, organizational structures, skills profiles, compensation, payroll inputs, and workforce reporting

  • Experience with data quality platforms or monitoring tools (e.g., Informatica CDGC, Collibra, Ataccama, or similar)

Preferred Qualifications

  • Experience in the pharmaceutical, biotech, or life sciences industry

  • Experience working with Workday HCM or comparable enterprise HR platforms is a strong plus — Workday certification or formal training valued but not required as the primary technical requirement

  • Familiarity with Workday Skills Cloud, Career Hub and their underlying data structures

  • Exposure to MLOps or AI/ML data pipeline engineering

  • Certification in data governance, data quality management, or HR analytics

  • Knowledge of GDPR, data privacy regulations, and their implications for HR data management

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