Pitney Bowes

Principal AI & Data Architect

Pitney Bowes$150K — $180K *
Enterprise Technology
11 - 15 years of experience
Job Overview by Ladders

Qualifications

  • 15+ years of experience in enterprise architecture, data architecture, or AI and ML platforms.
  • Successful background in building enterprise-scale data and AI platforms.
  • Experience in driving AI adoption from concept to production at scale.
  • Strong technical expertise in AWS, Azure, GCP, and distributed systems.
  • Deep knowledge in lakehouse, data mesh, MLOps, generative AI, and cloud-native architectures.
  • Understanding of security and compliance for data and AI systems.
  • Evidence of influencing senior stakeholders and building high-talent teams.

Responsibilities

  • Lead enterprise AI and data strategy and own the architecture roadmap.
  • Align AI and data initiatives with business goals.
  • Establish standards for scalable AI and data capabilities.
  • Serve as a trusted advisor on AI strategy for business leaders.
  • Define enterprise data models and integration patterns.
  • Lead the development of a centralized enterprise data platform.
  • Embed responsible AI practices including transparency and fairness.

Benefits

  • Opportunity for career growth and development.
  • Inclusive environment that values diverse perspectives.
  • Challenging opportunities in a transforming organization.
  • Comprehensive global benefits and wellbeing programs.
Full Job Description
Job Description:

You Are

A senior technical leader who sets the direction for the organization's AI and data architecture. You build the scalable, secure, and governed foundation that supports analytics, machine learning, and generative AI. You serve as the architecture authority for AI and data platforms and ensure alignment across business priorities, technology strategy, and delivery teams.

You Will
  • Lead enterprise AI and data strategy and own the architecture roadmap.
  • Align AI and data initiatives with business goals and measurable value.
  • Establish standards for scalable and reusable AI and data capabilities.
  • Serve as a trusted advisor to technology and business leaders on AI strategy.
  • Design modern data architecture including lakehouse, mesh, and hybrid models.
  • Define enterprise data models, canonical schemas, metadata strategy, lineage, and integration patterns.
  • Lead the development of a centralized and scalable enterprise data platform.
  • Build AI and ML platform capabilities including MLOps and LLMOps.
  • Enable consistent model lifecycle management from data ingestion through deployment and monitoring.
  • Standardize tooling, frameworks, and infrastructure for AI delivery.
  • Drive adoption of production-grade AI patterns and reduce experimental silos.
  • Define and enforce data governance including ownership, stewardship, quality, MDM, and lifecycle management.
  • Resolve fragmentation and establish a single trusted data foundation.
  • Embed responsible AI practices including transparency, fairness, and explainability.
  • Partner with security and risk teams to protect sensitive data and models and mitigate AI-related risks.
  • Establish auditability and controls for AI systems.
  • Lead architecture governance through reference architectures, patterns, and reusable components.
  • Conduct architecture reviews for major data platforms and AI-enabled applications.
  • Partner with engineering, product, security, and operations teams to support a federated adoption model.
  • Build and mentor a high-performing team of architects and engineers.
  • Drive collaboration through councils, governance forums, and working groups.


You Bring
  • Enterprise experience with 15 or more years in enterprise architecture, data architecture, or AI and ML platforms.
  • Proven success building enterprise-scale data and AI platforms.
  • Experience driving AI adoption from concept to production at scale.
  • Strong background in AWS, Azure, GCP, and distributed systems.
  • Technical depth across lakehouse, data mesh, ETL and ELT, streaming pipelines, model lifecycle management, MLOps, generative AI, LLM integration, metadata, lineage, and cloud-native architectures.
  • Understanding of security and compliance requirements for data and AI systems.
  • Ability to operate at both strategic and hands-on technical levels.
  • Experience establishing enterprise standards and governance.
  • Proven ability to influence senior stakeholders and cross-functional teams.
  • Track record of building high-talent technical teams.


Success Outcomes in the First 12 to 24 Months
  • Enterprise AI and data platform adopted across business units.
  • Clear ownership and governance in place with reduced data fragmentation.
  • Standardized AI delivery lifecycle with measurable improvements in speed and quality.
  • Increased business impact from AI including revenue growth, cost efficiency, and improved decision quality.
  • Strong architecture governance model that drives consistency and reuse.


Key Performance Indicators

Business Impact
  • AI-driven revenue contribution and cost optimization.
  • Adoption of AI and data capabilities across business units.

Platform and Delivery
  • Time required to deploy AI models.
  • Percentage of workloads using the standardized platform.

Data Quality and Governance
  • Percentage of critical data assets with defined ownership.
  • Improvements in data quality scores.

AI Effectiveness
  • Model accuracy, drift reduction, and business outcome metrics.
  • Return on investment for AI projects.

Risk and Compliance
  • Percentage of AI systems under governance.
  • Reduction in data and AI-related risk incidents.


Location:

This is a hybrid role, with 4 days in the Shelton, CT office required. (No relocation assistance offered.)

Sponsorship:

Must be legally authorized to work in the US. Employer will not sponsor position for employment visa status now or in the future (ex. H-1B).

We will:
• Provide the opportunity to grow and develop your career
• Offer an inclusive environment that encourages diverse perspectives and ideas
• Deliver challenging and unique opportunities to contribute to the success of a transforming organization
• Offer comprehensive benefits globally(PB Benefits and Wellbeing Programs)

About Pitney Bowes

Pitney Bowes Inc. is an American technology company most known for its postage meters and other mailing equipment and services, and with expansions into e-commerce, software, and other technologies. The company was founded by Arthur Pitney, who invented the first commercially available postage meter, and Walter Bowes as the Pitney Bowes Postage Meter Company on April 23, 1920. The company provides mailing and shipping services, global e-commerce logistics, and financial services to approximately 750,000 customers globally, as of 2021. Pitney Bowes is a certified "work-share partner" of the United States Postal Service, and helps the agency sort and process 15 billion pieces of mail annually. Pitney Bowes has also commissioned surveys related to international e-commerce. Pitney Bowes is based in Stamford, Connecticut and as of October 2021 employed approximately 11,000 people worldwide.
Learn more about Pitney Bowes
Size
11,500 employees
Market Cap
$643.8 million
Industry
Net Income
-$181.5 million
Founded
1920
5 Year Trend
+4.3%
Revenue
$3.5 billion
NASDAQ

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