Job Summary
The Developer will design build and optimize PySpark based data solutions that support analytics and content decision making for a global media and entertainment organization. The role involves hybrid work collaborating with cross functional teams to deliver reliable data pipelines improve audience insights and enable data driven strategies that enhance content performance and operational efficiency.
Responsibilities
Design robust PySpark data pipelines that efficiently ingest transform and aggregate large scale media and entertainment datasets to support analytics and reporting needsImplement optimized PySpark code that enhances performance of batch and near real time data processing for audience metrics and content consumption patternsCollaborate with data engineers analysts and product teams in a hybrid work model to understand media business requirements and translate them into scalable technical solutionsDevelop reusable data frameworks and components that standardize processing of streaming video on demand and advertising data while ensuring consistency and reliabilityApply data quality checks validation routines and monitoring mechanisms within PySpark workflows to maintain accurate and trustworthy data for content and revenue decisionsIntegrate data from multiple media platforms and content management systems into unified data models that enable holistic views of audience engagement and catalog performanceOptimize storage formats partitioning strategies and execution configurations in PySpark to reduce processing time and infrastructure costs for large media datasetsCollaborate with stakeholders to deliver clear and timely data outputs that support programming strategy recommendation engines campaign measurement and operational dashboardsDocument technical designs PySpark jobs data flows and configuration details to ensure maintainability and smooth handover across distributed development teamsEnsure compliance with data governance security and privacy standards relevant to media and entertainment usage while working within day shift schedulesTroubleshoot production pipeline issues perform root cause analysis and implement corrective actions to minimize disruption to critical reporting and analytics for content operationsContribute to continuous improvement initiatives by proposing enhancements to data pipeline architecture coding practices and automation capabilities in the PySpark ecosystemSupport testing activities by preparing sample datasets validating outputs and collaborating with quality teams to ensure that delivered data solutions align with business expectations
Qualifications
Demonstrate strong proficiency in PySpark programming and distributed data processing with a track record of building scalable data pipelines for analytical workloadsPossess solid understanding of media and entertainment domain concepts including audience measurement content metadata streaming events advertising metrics and catalog managementBring experience working with big data platforms and data warehousing technologies that commonly integrate with PySpark driven solutions for large enterprisesExhibit familiarity with version control collaborative development practices and hybrid work environments that rely on structured communication and documentationShow capability to analyze complex data requirements from media stakeholders and convert them into efficient data models and transformation logic using PySparkDisplay knowledge of best practices in performance tuning resource optimization and job scheduling for PySpark applications processing high volume media dataDemonstrate experience with data quality frameworks validation techniques and monitoring tools that help maintain reliable data assets for business critical reporting
关于高知特 (Cognizant)
高知特(Cognizant)(纳斯达克代码:CTSH)作为一家AI Builder和相关技术服务提供商,致力于通过打造全栈AI解决方案,帮助企业将人工智能投资转化为实际价值。公司凭借深厚的行业经验、流程优化和工程技术专长,将企业独特的业务场景融入科技系统,赋能组织释放人才潜能,推动切实成果,并帮助全球企业在瞬息万变的环境中保持领先。如需了解更多详情,敬请访问 cognizant.ai 或关注@cognizant。
补充雇佣信息
薪酬信息截至本职位发布之日为准。Cognizant 保留在适用法律允许的范围内随时修改该信息的权利。
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