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Senior Software Engineer, Privacy & Data Governance

seniorofficeBuenos Aires, Argentina, ARScore 75.5/100today
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Description
Want to help us help others? We're hiring! GoFundMe is the world’s most powerful community for good, dedicated to helping people help each other. By uniting individuals and nonprofits in one place, GoFundMe makes it easy and safe for people to ask for help and support causes—for themselves and each other. Together, our community has raised more than $40 billion since 2010. Join us! The GoFundMe team is searching for our next Senior Software Engineer, Privacy & Data Governance to join a growing team building and operating the technical infrastructure that ensures GoFundMe honors its data privacy and information management commitments at scale. You will work across engineering, privacy, and compliance, partnering with Legal & Privacy to translate regulatory requirements into durable, production-grade services. That means building the systems that execute data subject requests, enforce data classification across our data ecosystem, and propagate consent signals from capture through every downstream system. If you enjoy building reliable, auditable systems under real regulatory pressure and getting the edge cases right, this role is for you. This is a hybrid position. Candidates considered for this role will be located in Buenos Aires, Argentina. The Job Own Data Subject Request pipeline reliability end-to-end: When our DSR orchestrator reports a deletion failure or a pre-flight check flags an inconsistency, you investigate and resolve it [on a shared rotation / as part of normal triage, to confirm]. You'll build DSR handling pipelines that are auditable, resumable, and idempotent, and that can retry safely from an inconsistent state and hold up against third-party API timeouts, partial writes, and stalled event consumers. Own access, deletion, and objection processes at the data layer: Maintain and extend the scripts and workflows that carry out individual-level privacy requests across our data warehouse, handling edge cases like legal holds, financial data exemptions, and users who appear across multiple systems under different identifiers. Build the systems that classify and protect personal data: Classify and tag personal and sensitive data, and enforce sensitivity tiers across our data catalog. , hard delete, nullify, pseudonymize), using approved tokenization and encryption services where policy requires them. Drive consent signal propagation: Make sure consent state travels correctly from capture (analytics, retargeting, model training opt-outs, email subscription statuses) through tag managers, event pipelines, and downstream systems such as ad platforms, CDPs, and the data warehouse. Identify and close gaps where a signal is captured but doesn't reach a downstream system, or isn't honored end-to-end across web, mobile, email, and server-to-server channels. Help design and build a centralized consent source of truth. Partner on consent management platform (CMP) operations: Work with Pro PMs and Engineering on release management, QA, and production troubleshooting for our CMP across Consumer and Pro instances. Build privacy in early: Turn privacy requirements into concrete engineering decisions that support Privacy by Design. Bring them into product development and security engineering reviews, and know when to escalate together with Legal & Privacy. Produce technical compliance evidence: Generate the coverage reports, logs, and documentation that support internal privacy-compliance reviews and external audits. Use AI to increase engineering impact: Integrate AI-assisted tools and coding agents into your day-to-day workflow to deliver more than traditional development practices alone would allow. Use them to accelerate prototyping, implementation, test generation, debugging, data investigation, documentation, and repetitive engineering work, while holding to our standards for accuracy, maintainability, security, and code review. You We care most about strong engineering fundamentals, the ability to learn a new domain quickly, and the judgment to partner with Legal, Privacy, and engineering teams and drive technical work to completion. Senior engineering experience with hands-on privacy exposure: 5+ years building and operating production backend or distributed systems, including meaningful, repeated work on privacy or compliance systems, such as DSR or deletion flows, consent handling, data classification, or retention. Strong programming: Fluency in a general-purpose language (Python, Java, Kotlin, Go, or similar) for ETL, redaction scripts, pre-flight checks, and coverage reporting, including integrating with external vendor REST APIs (authentication, error handling, rate limiting). Operating services: Comfort deploying and running services in a containerized environment (Kubernetes basics: deploy, read logs, diagnose a failing pod), with observability and sound handling of secrets and credentials. Working knowledge of data stores: Comfort reading and writing SQL and working with data warehouses and databases well enough to build and validate deletion, redaction, and reporting logic. Requirements into engineering work: Ability to take a privacy requirement, identify the concrete engineering work it creates, and push back when something is infeasible or counterproductive. Clear communication and partnership: Ability to explain regulatory, technical, and implementation tradeoffs to engineering and non-engineering stakeholders, and to partner effectively with Legal & Privacy, the Privacy Program Manager, and owning t
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