
10,000+ employees
Founded 1920
đŚ Logistics
đź Consulting
đŁ Marketing
Logistics ⢠Consulting ⢠Marketing
Pitney Bowes is a technology-driven company that provides SaaS shipping solutions, mailing innovation, and financial services to clients worldwide, including more than 90 percent of the Fortune 500. It caters to a range of clients from small businesses to large enterprises and government entities, helping them reduce the complexity of sending mail and parcels. Pitney Bowes combines cutting-edge technical solutions with client services, engineering, finance, and warehouse operations to offer comprehensive support and innovation in digital commerce.
đĽ 0 minutes ago
đŚ Connecticut, Florida, +4 more states â Remote
â° Full Time
đ Senior
đ´ Lead
đ° Data Engineer
đŚ H1B Visa Sponsor
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10,000+ employees
Founded 1920
đŚ Logistics
đź Consulting
đŁ Marketing
Logistics ⢠Consulting ⢠Marketing
Pitney Bowes is a technology-driven company that provides SaaS shipping solutions, mailing innovation, and financial services to clients worldwide, including more than 90 percent of the Fortune 500. It caters to a range of clients from small businesses to large enterprises and government entities, helping them reduce the complexity of sending mail and parcels. Pitney Bowes combines cutting-edge technical solutions with client services, engineering, finance, and warehouse operations to offer comprehensive support and innovation in digital commerce.
⢠Define and own the enterprise AI and data architecture roadmap ⢠Align AI and data initiatives with business strategy and value realization ⢠Establish standards for scalable, reusable AI and data capabilities ⢠Advise the CIO and business leadership on AI strategy ⢠Design and implement modern enterprise data architecture using lakehouse, mesh, or hybrid models ⢠Define enterprise-wide data models, canonical schemas, metadata, lineage, data catalog, integration, and interoperability strategies ⢠Lead development of a centralized, scalable data platform ⢠Establish enterprise AI/ML platform capabilities, including MLOps and LLMOps ⢠Enable model lifecycle management from data ingestion through training, deployment, and monitoring ⢠Standardize tooling, frameworks, and infrastructure for AI delivery ⢠Drive adoption of production-grade AI patterns ⢠Define and enforce data governance, ownership, stewardship, quality, master data, and lifecycle standards ⢠Resolve data fragmentation and enable a single trusted data foundation ⢠Embed responsible AI practices, including transparency, fairness, and explainability ⢠Partner with security and risk leaders to mitigate AI risks, protect sensitive data and models, establish security standards, and implement auditability and controls ⢠Serve as enterprise authority for AI and data architecture decisions ⢠Define reference architectures, patterns, and reusable components ⢠Lead architecture reviews for major data platforms and AI-enabled applications ⢠Ensure consistency across business units and technology teams ⢠Partner with Engineering, Product, Security, and Operations teams ⢠Enable a federated adoption model with central platforms and distributed execution ⢠Build and mentor a high-performing team of architects and engineers ⢠Drive collaboration through AI councils, governance forums, and working groups ⢠Establish and adopt an enterprise AI and data platform across business units ⢠Reduce data fragmentation and implement clear ownership and governance ⢠Standardize the AI delivery lifecycle with measurable improvements in speed and quality ⢠Increase business impact from AI through revenue, cost efficiency, and decision quality ⢠Drive consistency and reuse through architecture governance
⢠15+ years in enterprise architecture, data architecture, or AI/ML platforms ⢠Proven experience building enterprise-scale data and AI platforms ⢠Experience driving AI adoption from concept to production at scale ⢠Strong background in cloud platforms (AWS, Azure, GCP) and distributed systems ⢠Technical expertise in data architecture: lakehouse, data mesh, ETL/ELT, streaming pipelines ⢠Technical expertise in AI/ML: model lifecycle, MLOps, generative AI, LLM integration ⢠Technical expertise in data governance: metadata, lineage, quality frameworks ⢠Technical expertise in platform engineering: APIs, microservices, cloud-native architectures ⢠Security and compliance principles for data and AI systems ⢠Ability to operate at both strategic and deep technical levels ⢠Strong experience establishing enterprise standards and governance ⢠Proven ability to influence executive stakeholders and cross-functional teams ⢠Track record of building high-talent-density teams ⢠Must be legally authorized to work in the US ⢠Employer will not sponsor position for employment visa status now or in the future (e.g., H-1B)
⢠Opportunity to grow and develop your career ⢠Inclusive environment that encourages diverse perspectives and ideas ⢠Challenging and unique opportunities to contribute to the success of a transforming organization ⢠Comprehensive benefits globally (PB Benefits and Wellbeing Programs)
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