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Manager - Data Quality

18 hours ago 2026/11/11 ·Application closes in 119 days
Other Business Support Services
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Job description

The Enterprise Technology Services organization partners with every part of the American Express business to power the company’s growth and innovation with trust and efficiency, and drive competitive differentiation with speed. We support the delivery and operations of technology, digital, and data capabilities, platforms, and services globally. Specifically, our team is responsible for the company’s technology engineering, architecture, and infrastructure, providing 24x7 support to ensure an uninterrupted, high-quality experience for customers and colleagues. We also provide product management for core enterprise platforms, and lead technology risk and information security, enterprise data governance and platforms, digital product and design, and enterprise AI platforms on behalf of the company.


This role is part of the newly formed Enterprise Technology Services (ETS) Data Office. The Manager, Data Quality (DQ) will lead the strategy and execution of enterprise Data Quality capabilities across ETS. This role is responsible for modernizing how data quality risk is measured, monitored, and remediated while establishing scalable controls that improve trust in data used for operations, analytics, AI, regulatory processes, and decision-making. This role will build a proactive, AI-enabled Data Quality practice focused on prevention over detection, automation over manual effort, and measurable business outcomes over compliance-driven activities. 



At American Express, our culture is built on a 175-year history of innovation, shared values and Leadership Behaviors, and an unwavering commitment to back our customers, communities, and colleagues. From delivering differentiated products to providing world-class customer service, we operate with a strong risk mindset, ensuring we continue to uphold our brand promise of trust, security, and service.


As part of Team Amex, you’ll experience our powerful backing with comprehensive support for your holistic well-being and many opportunities to learn new skills, develop as a leader, and grow your career. Here, your voice and ideas matter, your work makes an impact, and together, you will help us define the future of American Express.



Responsibilities:
  • Execute the enterprise Data Quality strategy across ETS aligned to industry-leading data management and risk frameworks.
  • Standardize Data Quality measurement and monitoring across critical data domains, including data at rest, in motion, and at point of entry.
  • Operationalize scalable Data Quality controls and governance practices that reduce operational, regulatory, and customer risk.
  • Lead enterprise root-cause analysis and remediation efforts to reduce recurring data issues and improve control effectiveness.
  • Build AI-enabled capabilities for anomaly detection, intelligent monitoring, automated profiling, and predictive Data Quality insights.
  • Modernize Data Quality reporting through automated dashboards, drill-down analytics, and executive-ready risk transparency.
  • Partner with Data Stewards, Product Owners, Engineering, Risk, and Control Management teams to ensure data is fit for purpose across business processes and platforms.
  • Drive consistent Data Concern, Issue, and Event Management practices while improving remediation speed and reducing repeat failures.
  • Define KPIs and risk metrics that demonstrate Data Quality health, control performance, and business impact.

Qualifications:
  • 6+ years of direct work experience in large scale/enterprise data projects, with at least 4 years of direct experience relating to execution of formal data governance and/or data management programs 
  • Expertise in enterprise Data Quality, Data Governance, and Data Risk Management within large-scale or highly regulated environments.
  • Strong understanding of industry frameworks such as DCAM, DAMA-DMBOK, BCBS 239, and modern Data Product/Data Mesh principles.
  • Proven experience supporting enterprise-scale Data Quality programs and operating models.
  • Demonstrated experience leveraging AI and machine learning to modernize Data Quality operations and automation.
  • Experience implementing Data Quality controls, metrics, monitoring, and remediation practices across complex data ecosystems.
  • Strong communication and stakeholder management skills with ability to simplify complex data topics for business and technology leaders.
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