Remote opportunity

Software Engineer, Data Platform

Movable Ink · Remote

Remote jobSource: JobsCollider
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Remote role: confirm Australian/location eligibility with the original employer before applying.

Movable Ink scales content personalization for marketers through data-activated content generation and AI decisioning. The world’s most innovative brands rely on Movable Ink to maximize revenue, simplify workflow and boost marketing agility. Headquartered in New York City with close to 600 employees, Movable Ink serves its global client base with operations throughout North America, Central America, Europe, Australia, and Japan. As an Engineer on the Data Platform team at Movable Ink, you will help design and build the systems that power how data flows through the organization. You will play a key role in developing and operating the unified data platform responsible for ingesting, processing, and exposing large volumes of data that drive Movable Ink’s products. Working closely with teammates across engineering, analytics, and infrastructure, you will build scalable ingestion pipelines and backend services that integrate data from a variety of sources while ensuring reliability, governance, and high availability across the platform. You will help evolve legacy pipelines toward modern data architectures, and help drive the unification of our products and services in how they access data. Your work will directly impact the growth and maturity of Movable Ink’s products and services. The role will be reporting to Engineering Manager, Data Platform Responsibilities: Support the design and delivery of data ingestion pipeline and infrastructure Assist in the successful migration of legacy data lifecycle management to new platform without disrupting existing data consumers Establish and maintain SLIs and SLOs for new ingestion and data platform with dashboards and alerting to track performance Build flexible data storage layer supporting a variety of use cases, e.g., transactional, analytic, and machine learning workloads Implement comprehensive monitoring, observability, and incident response practices for all event data pipelines and services Collaborate with product engineering, analytics, and machine learning teams to define contracts, functional requirements, and standards Design and implement a semantic metadata layer that classifies and labels data assets across both products, enabling consistent data discovery, exposure policies, and identification of cross-product data reuse opportunities Architect and deliver a multi-tenant data model that supports secure data sharing and isolation across clients, with controls designed to meet regulatory and government compliance requirements Qualifications: A proven ability to learn new technologies, frameworks, and problem domains A focus on solving big picture problems with a focus on product and the end user Deep understanding of data governance principles and data lifecycle management, including data quality…

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