Senior Data Engineer & Architect

Adobe Systems
San Jose, United States of America
1 month ago

Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours
Languages
English
Experience level
Senior
Compensation
$ 331K

Job location

San Jose, United States of America

Tech stack

Java
Airflow
Amazon Web Services (AWS)
Data analysis
Azure
Google BigQuery
Cloud Computing
Data as a Services
Data Architecture
Information Engineering
Data Governance
Data Integrity
ETL
Data Systems
Data Warehousing
Dimensional Modeling
Distributed Systems
Python
Machine Learning
Operational Databases
Performance Tuning
Software Engineering
SQL Databases
Data Streaming
Data Processing
Cloud Platform System
Snowflake
Spark
Build Management
Adobe
Collibra
Performance Monitor
Kafka
Data Management
Machine Learning Operations
Physical Data Models
Data Pipelines
Redshift

Job description

The Adobe Experience Platform (AEP) Product Success Engineering team is hiring a Senior Data Engineer & Architect to help build and scale the infrastructure that powers product adoption insights, customer retention analytics, system performance monitoring, and operational intelligence across Adobe.

In this role, you will design and build reliable, scalable, cloud-native data systems while contributing to platform-wide architectural direction and standards. You'll collaborate closely with Data Scientists, Analytics Engineers, Solution Architects, and Product partners to translate evolving business needs into durable data solutions that support analytics and machine learning use cases.

This opportunity is ideal for someone who enjoys hands-on engineering while influencing broader data architecture strategy.

What You'll Do

Design & Evolve the Data Platform

  • Partner with engineering leadership to develop and evolve enterprise-scale data architecture across warehouses, lakes, and modern data platforms.
  • Develop logical and physical data models crafted to enable analytics and ML use cases, including dimensional models and optimized schemas.
  • Contribute to platform standards, reference architectures, and documentation across ingestion, transformation, governance, and analytics enablement.
  • Collaborate with Enterprise Architecture and Cloud Infrastructure teams to align with security, compliance, performance, and cost optimization guidelines.

Build Scalable Data Pipelines

  • Design, develop, and maintain reliable ETL/ELT pipelines integrating data from usage, clickstream, entitlement, cost, and support systems.
  • Build modular, reusable pipeline frameworks using orchestration tools such as Airflow, Dagster, or Prefect.
  • Optimize data processing workflows for performance, scalability, and cost efficiency using distributed systems (e.g., Spark, Beam).
  • Work with Data Scientists and Analytics Engineers to operationalize data products and ML-ready datasets.

Strengthen Governance, Quality & Reliability

  • Design and implement scalable frameworks for managing and improving data integrity, including cataloging, lineage tracking, access controls, and automated validation processes to ensure trusted, production-grade data.
  • Establish and continuously improve reliability standards for data services, defining and tracking key SLOs such as freshness, pipeline success rates, and availability through proactive monitoring and alerting.
  • Maintain clear metadata, documentation, and data definitions to improve discoverability, enable self-service analytics, and support consistent operational excellence across the platform.

Requirements

  • Bachelor's degree in Computer Science, Engineering, or a related field - or equivalent practical experience.
  • 8+ years of experience in data engineering or software engineering, including building and operating production data platforms.
  • Experience contributing to data architecture decisions at the system or platform level.

Technical Expertise

  • Strong experience with cloud data warehouses (e.g., Snowflake, BigQuery, Redshift), including schema design and performance tuning.
  • Experience building production-grade pipelines using orchestration frameworks (Airflow, Dagster, Prefect) and distributed processing tools (Spark, Beam).
  • Deep understanding of ETL/ELT patterns, dimensional modeling, and analytics dataset design.
  • Experience implementing data governance and quality practices, including lineage, validation, and role-based access controls.
  • Proficiency in Scale or Java, plus experience Python & SQL
  • Experience working with at least one major cloud platform (AWS, Azure, or GCP).
  • Experience defining data modeling standards, naming conventions, and data contracts.
  • Familiarity with event-driven and streaming systems (e.g., Kafka, Kinesis).

Communication & Collaboration

  • Ability to translate business questions into scalable data models and platform capabilities.
  • Ability to clearly explain data and architectural concepts to diverse audiences.

Nice to Have

  • Experience in B2B SaaS, product analytics, or customer success environments.
  • Hands-on experience with modern data stack tools (dbt, Great Expectations, Atlan, Collibra).
  • Exposure to MLOps concepts such as feature pipelines and training datasets., If you're passionate about building reliable, scalable data systems and influencing platform strategy, we'd love to hear from you.

Benefits & conditions

  • Develop the architecture of a critical data platform used across Adobe.
  • Combine hands-on engineering with meaningful architectural influence.
  • Work with modern cloud and data technologies at enterprise scale.
  • Collaborate with experienced Data Science, Analytics, and Platform Engineering teams., Our compensation reflects the cost of labor across several U.S. geographic markets, and we pay differently based on those defined markets. The U.S. pay range for this position is $173,500 -- $331,050 annually. Pay within this range varies by work location and may also depend on job-related knowledge, skills, and experience. Your recruiter can share more about the specific salary range for the job location during the hiring process.

In California, the pay range for this position is $228,600 - $331,050

At Adobe, for sales roles starting salaries are expressed as total target compensation (TTC = base + commission), and short-term incentives are in the form of sales commission plans. Non-sales roles starting salaries are expressed as base salary and short-term incentives are in the form of the Annual Incentive Plan (AIP).

In addition, certain roles may be eligible for long-term incentives in the form of a new hire equity award.

About the company

Adobe empowers everyone to create through innovative platforms and tools that unleash creativity, productivity and personalized customer experiences. Adobe's industry-leading offerings including Adobe Acrobat Studio, Adobe Express, Adobe Firefly, Creative Cloud, Adobe Experience Platform, Adobe Experience Manager, and GenStudio enable people and businesses to turn ideas into impact, powered by AI and driven by human ingenuity. Our 30,000+ employees worldwide are creating the future and raising the bar as we drive the next decade of growth. We're on a mission to hire the very best and believe in creating a company culture where all employees are empowered to make an impact. At Adobe, we believe that great ideas can come from anywhere in the organization. The next big idea could be yours. Let's Adobe together At Adobe, we believe in creating a company culture where all employees are empowered to make an impact. Learn more about Adobe life, including our values and culture, focus on people, purpose and community, Adobe for All, comprehensive benefits programs, the stories we tell, the customers we serve, and how you can help us advance our mission of empowering everyone to create., At Adobe, we empower employees to innovate with AI - and we look for candidates eager to do the same. As part of the hiring experience, we provide clear guidance on where AI is encouraged during the process and where it's restricted during live interviews. See how we think about AI in the hiring experience.

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