MarTech LiveRamp CleanRoom Engineer

Hybrid in Dallas, TX, US • Posted 13 hours ago • Updated 13 hours ago
Contract Corp To Corp
Contract Independent
Contract W2
12 Months
No Travel Required
Hybrid
Depends on Experience
Fitment

Dice Job Match Score™

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Job Details

Skills

  • Google Cloud Platform
  • Extract, Transform, Load
  • GMP
  • Good Clinical Practice
  • Data Quality
  • Data Science
  • Digital Marketing
  • Communication
  • Conflict Resolution
  • DV
  • Data Engineering
  • Apache Spark
  • Cloud Computing
  • Collaboration
  • Amazon Web Services
  • Analytics
  • Python
  • Retail
  • Optimization
  • Pinterest
  • Privacy
  • Problem Solving
  • Marketing Analytics
  • Microsoft Azure
  • Modeling
  • Jersey
  • MTA
  • Management
  • Marketing
  • Media
  • Budget
  • Digital Media
  • Gramm-Leach-Bliley Act
  • IDS
  • ADS
  • Adobe Marketing Cloud
  • Advertising
  • Analytical Skill
  • SAFE
  • SQL
  • Snow Flake Schema
  • Use Cases
  • Workflow
  • Advertising Measurement
  • Advertising Data Science
  • Clean Room Engineering
  • Data Clean Room
  • LiveRamp
  • Habu
  • Safe Haven
  • Amazon Marketing Cloud
  • Amazon Clean Rooms
  • Google Ads Data Hub
  • Google Marketing Platform
  • Snowflake Clean Room
  • InfoSum
  • Advanced SQL
  • Spark
  • Data Modeling
  • Analytics Engineering
  • Reach & Frequency
  • Campaign Pacing
  • Multi-Touch Attribution
  • Marketing Attribution
  • Incrementality Testing
  • Media Mix Modeling
  • MMM
  • Marketing Effectiveness
  • Audience Analytics
  • Campaign Performance Measurement
  • Media Performance Analytics
  • Meta Ads
  • Google DV360
  • TikTok Ads
  • Pinterest Ads
  • Amazon Advertising
  • Retail Media
  • Identity Resolution
  • Deterministic Matching
  • Probabilistic Matching
  • RampID
  • Persistent IDs
  • Match Rate Optimization
  • Privacy-Safe Analytics
  • Privacy-Preserving Aggregation
  • Suppression Rules
  • Noise Budgets
  • UDFs
  • Clean Room Query Logic
  • Analytical Queries
  • Data Pipelines
  • AWS
  • Azure
  • GCP
  • Data Transformation
  • Data Privacy
  • CCPA
  • GLBA
  • Digital Advertising
  • Attribution Modeling
  • Marketing Measurement
  • Customer Analytics
  • Consumer Analytics
  • Media Analytics
  • Ad Tech
  • MarTech
  • Advertising Analytics
  • Media Measurement
  • Ad Measurement
  • Retail Media Analytics
  • Digital Marketing Analytics
  • Marketing Science
  • Measurement Science
  • Attribution Algorithms
  • Incrementality Measurement
  • Causal Inference
  • Lift Studies
  • Conversion Measurement
  • ROAS
  • ROI Measurement
  • Media Planning Analytics
  • Media Optimization
  • Audience Segmentation
  • Audience Measurement
  • Customer Journey Analytics
  • Cross-Channel Measurement
  • Omnichannel Analytics
  • First-Party Data
  • Second-Party Data
  • Data Collaboration
  • Privacy-Enhancing Technologies
  • PETs
  • Data Clean Room Architecture
  • Clean Room Queries
  • Clean Room UDFs
  • Aggregate Queries
  • Data Minimization
  • Differential Privacy
  • K-Anonymity
  • Identity Graph
  • Identity Matching
  • Customer Identity Resolution
  • UID2
  • Unified ID
  • Snowflake
  • Databricks
  • BigQuery
  • Redshift
  • PySpark
  • ETL/ELT
  • dbt
  • Data Warehousing
  • Statistical Modeling
  • Predictive Analytics
  • Machine Learning
  • Experimentation
  • A/B Testing
  • Causal Modeling
  • SQL Analytics
  • Python Analytics
  • Programmatic Advertising
  • DSP
  • SSP
  • DMP
  • CDP
  • Retail Media Networks

Summary

Role: Clean Room Engineer
Location: Charlotte, NC / Dallas, TX / Jersey City, NJ (Hybrid – 3 days/week onsite)
Duration: 12 months

Job Overview:

We are seeking a Clean Room Engineer with a strong background in advertising measurement, marketing analytics, data science, or analytics engineering. The ideal candidate will combine hands-on expertise in SQL and Python with a solid understanding of digital advertising measurement, attribution, audience analytics, and privacy-safe data collaboration.

The candidate should be comfortable working with large-scale marketing datasets and translating advertising and campaign data into measurable business insights while operating within privacy and clean-room constraints.

Key Responsibilities:

  • Develop and analyze advertising measurement solutions covering reach and frequency, campaign pacing, attribution, incrementality, media effectiveness, and audience performance.

  • Build analytical queries and data models using advanced SQL and Python to support marketing and advertising measurement use cases.

  • Design and implement measurement approaches for multi-touch attribution (MTA), marketing attribution, campaign performance, and media mix modeling (MMM).

  • Analyze advertising campaigns across digital media channels and evaluate campaign reach, engagement, conversion, and effectiveness.

  • Work with advertising ecosystems such as Meta, Google DV360, Google Marketing Platform, TikTok, Pinterest, Amazon Advertising, and similar platforms.

  • Develop measurement solutions within privacy-safe data collaboration and clean-room environments.

  • Work with platforms such as LiveRamp Clean Room/Safe Haven/Habu, Amazon Marketing Cloud, Amazon Clean Rooms, Google Ads Data Hub, GMP, Snowflake, or comparable technologies.

  • Create clean-room analytical logic, including questions, queries, UDFs, and privacy-compliant analytical workflows within publisher or platform constraints.

  • Apply privacy-safe aggregation techniques, including minimum group-size requirements, suppression rules, noise controls, and restricted data-access patterns.

  • Support identity resolution use cases involving deterministic and probabilistic matching, persistent identifiers, RampID or equivalent IDs, and match-rate optimization.

  • Build and maintain scalable data pipelines across AWS, Azure, or Google Cloud Platform environments.

  • Use Python and/or Spark for data transformation, analytical processing, and pipeline development.

  • Partner with marketing, media, analytics, data engineering, and business teams to translate measurement requirements into technical solutions.

  • Validate analytical results and ensure measurement methodologies are accurate, reproducible, and aligned with business objectives.

  • Follow applicable data privacy and regulatory requirements, including CCPA, GLBA, and applicable state privacy regulations.

  • Document analytical methodologies, data models, clean-room logic, and technical processes.

  • Troubleshoot data quality, query, pipeline, identity-matching, and measurement-related issues.

Advertising Measurement Experience:

Candidates should have hands-on experience with one or more of the following:

  • Reach & Frequency Analysis

  • Campaign Pacing

  • Multi-Touch Attribution (MTA)

  • Marketing Attribution

  • Incrementality Testing

  • Media Mix Modeling (MMM)

  • Marketing Effectiveness

  • Audience Analytics

  • Campaign Performance Measurement

  • Media Performance Analytics

  • Conversion & Lift Analysis

Advertising & Media Platforms:

Experience with one or more of the following is highly desirable:

  • Meta

  • Google DV360

  • Google Marketing Platform (GMP)

  • TikTok

  • Pinterest

  • Amazon Advertising

  • Other digital advertising and retail media platforms

Clean Room / Privacy-Safe Data Technologies:

Experience with any of the following is preferred:

  • LiveRamp Clean Room / Safe Haven / Habu

  • Amazon Marketing Cloud (AMC)

  • Amazon Clean Rooms

  • Google Ads Data Hub

  • Google Marketing Platform

  • Snowflake Data Sharing / Clean Room

  • InfoSum

  • Other privacy-safe data collaboration platforms

Note: Direct LiveRamp experience is preferred but not mandatory. Candidates with relevant advertising measurement and clean-room experience on other platforms can be considered.

Identity Resolution:

  • Understanding of identity resolution and identity graph concepts.

  • Experience with deterministic and probabilistic matching.

  • Familiarity with RampID or equivalent persistent identifiers.

  • Experience analyzing and improving identity match rates.

  • Understanding of privacy-safe identity linkage across advertising and customer datasets.

Required Technical Skills:

  • Advanced SQL

  • Python

  • Data Analytics

  • Data Modeling

  • Analytical Query Development

  • Attribution & Measurement Logic

  • Large-Scale Data Processing

  • Cloud Data Platforms

  • Data Pipeline Development

  • Python and/or Spark

Preferred Qualifications:

  • 5–7+ years of experience in data science, data engineering, marketing technology, advertising analytics, identity infrastructure, or related fields.

  • 2+ years of hands-on experience working with data clean rooms or privacy-safe data collaboration environments.

  • Experience developing clean-room questions, analytical queries, and/or UDFs, rather than only performing ETL or data ingestion.

  • Strong understanding of privacy-preserving aggregation techniques, including suppression, minimum aggregation thresholds, and noise budgets.

  • Experience supporting retail media, advertising agencies, consumer brands, or digital media organizations.

  • Experience working with organizations such as Publicis, WPP, Omnicom, IPG, Dentsu, GroupM, Walmart, Target, Ulta Beauty, Kroger, Home Depot, Lowe's, Costco, CVS, or Walgreens is a plus.

  • Strong communication and problem-solving skills with the ability to work across technical and marketing stakeholders.

Employers have access to artificial intelligence language tools (“AI”) that help generate and enhance job descriptions and AI may have been used to create this description. The position description has been reviewed for accuracy and Dice believes it to correctly reflect the job opportunity.
  • Dice Id: 90999382
  • Position Id: 9086037
  • Posted 13 hours ago
Contact the job poster
AK

Anchal Khapekar

Recruiter @ Aptino
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