Data Engineer Graduate (Monetization Data) - 2027 Start
关于这个机会
The Monetization Data team builds the data foundation that powers TikTok's global advertising and monetization products. We design and operate large-scale batch and real-time data pipelines, data warehouses, and analytics platforms that help improve advertiser experience, measure business performance, support experimentation, and drive product and strategy decisions. We are looking for talented individuals to join our team. As a graduate, you will get opportunities to pursue bold ideas, tackle complex challenges, and unlock limitless growth. Successful candidates must be able to commit to an onboarding date by the end of the year. Please state your availability and graduation date clearly in your resume. Candidates can apply to a maximum of two positions and will be considered for jobs in the order you apply. The application limit is applicable to our Company and its affiliates' jobs globally. Applications will be reviewed on a rolling basis - we encourage you to apply early. Key Responsibilities: - Design, build, and maintain scalable batch and real-time data pipelines to process large-scale user behavior, advertising, and monetization data. - Develop reliable data models, datasets, and metrics that support ads ranking, measurement, experimentation, business analytics, and strategic decision-making. - Partner with product managers, data scientists, analysts, and engineering teams to understand data needs, define success metrics, and deliver actionable insights. - Improve data quality, observability, latency, cost efficiency, and platform reliability across large-scale distributed systems. - Contribute to the evolution of big data infrastructure and computing platforms, including Spark, Flink, Hive, Kafka, and related internal systems.
任职要求
Minimum Qualifications: - Individuals who are completing or have recently completed a Bachelor's or Mster's degree in Computer Science, Computer Engineering, Data Science, Statistics, Mathematics or a related discipline. - Strong programming skills in at least one general-purpose language such as Python, Java or Go. - Strong SQL skills and understanding of relational databases, data modeling, or data warehousing concepts. - Familiarity with distributed data processing or storage systems such as Spark, Flink, Hadoop, Hive, Kafka, Presto/Trino, or similar technologies. - Strong problem-solving skills, data-driven thinking, and ability to use data to identify issues, form hypotheses, and validate solutions. - Ability to work collaboratively in a fast-paced, cross-functional engineering environment. Preferred Qualifications: - Internship, research, coursework, or project experience in data engineering, backend engineering, distributed systems, data analytics, or machine learning infrastructure. - Experience building ETL/ELT pipelines, workflow orchestration, data quality checks, dashboards, or analytical datasets. - Experience with advertising technology, recommendation systems, experimentation platforms, or user behavior data analysis. - Familiarity with cloud data platforms, lakehouse architectures, or modern data tools such as Airflow, dbt, Iceberg, Delta Lake, Snowflake, BigQuery, Redshift, or Databricks. - Experience using AI-assisted development tools, LLM applications, or agentic workflows to improve engineering productivity. - Contributions to open-source projects, technical communities, hackathons, or substantial personal projects. - Experience contributing to open-source projects and the community; candidates with experience in big data processing or user behavior data analysis is a plus but not required.
内推申请说明
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