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Bright Vision Technologies

Hadoop Solutions Developer

Posted 6 Days Ago
Be an Early Applicant
In-Office
Renton, WA
100K-150K Annually
Senior level
In-Office
Renton, WA
100K-150K Annually
Senior level
Design, build, optimize, and operate large-scale Hadoop and big-data pipelines. Develop batch and streaming ETL/ELT workflows using Spark, Hive, Kafka, and related technologies; manage data models across distributed storage systems; implement governance, monitoring, orchestration, and quality controls; and support cloud and lakehouse adoption. Partner with analysts and data scientists, document architectures, conduct performance reviews, and mentor junior engineers.
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Hadoop Solutions Developer - Remote 
 
Bright Vision Technologies is a technology consulting and software development company delivering cloud, AI, data, and enterprise solutions across the United States. 
This is a fantastic opportunity to join an established and well-respected organization offering tremendous career growth potential. 
 
Job Title: Hadoop Solutions Developer
Location: 100% Remote (U.S.) 
Position Type: Full-time, Direct W2 
Salary Range: $100,000–$150,000 Annually 
Experience Required: 6+ years 
 
Sponsorship: U.S. Citizens, Green Card Holders, EAD Holders, and H-1B transfer candidates are encouraged to apply. We are unable to sponsor new H-1B visa petitions for this position. 
 
Job Summary 
We are seeking an experienced Hadoop Developer to design, build, and operate large-scale data processing pipelines and analytics platforms on Hadoop and related big-data ecosystems. In this role you will be responsible for ingesting, transforming, and analyzing massive volumes of structured and unstructured data to support enterprise analytics, machine learning, and reporting workloads. The ideal candidate will combine deep technical expertise across the Hadoop ecosystem with strong software engineering fundamentals and a clear understanding of how to deliver reliable, performant, and cost-effective data platforms in production environments. 
Key Responsibilities 
  • Design, develop, and operate end-to-end big-data pipelines on Hadoop, ingesting data from a diverse mix of relational, file-based, streaming, and API-driven sources. 
  • Build robust ETL/ELT workflows using Apache Spark, Hive, Pig, and Sqoop, with strong attention to data quality, idempotency, error handling, and recoverability. 
  • Develop high-throughput streaming data pipelines using Kafka, Spark Streaming, or Flink, and integrate them with downstream analytical and operational systems. 
  • Optimize Spark and MapReduce jobs through careful tuning of partitioning, memory, serialization, and skew handling to meet demanding SLAs at minimal cost. 
  • Design and maintain data models and storage layouts on HDFS, Hive, HBase, and modern lakehouse formats (Parquet, ORC, Delta, Iceberg, Hudi) to balance flexibility and performance. 
  • Implement data governance, lineage, and quality controls in collaboration with data governance and security teams. 
  • Build robust monitoring, alerting, and logging strategies for big-data pipelines, including job-level SLAs and proactive failure detection. 
  • Partner with data scientists and analysts to deliver curated, reliable, and well-documented datasets that accelerate their work. 
  • Automate pipeline orchestration using Airflow, Oozie, or similar workflow engines, with clean dependency management and clear ownership boundaries. 
  • Continuously evaluate and adopt new technologies in the big-data and cloud ecosystem (EMR, Databricks, Snowflake, BigQuery) where they offer meaningful improvements. 
  • Lead performance reviews and architecture audits of existing pipelines, proposing concrete refactoring and optimization initiatives. 
  • Document data architectures, schemas, pipeline behaviors, and operational runbooks in a way that makes the platform supportable as the team scales. 
  • Mentor junior engineers and contribute to the team’s engineering standards and best practices. 
Required Qualifications 
  • Bachelor’s degree in Computer Science, Engineering, or a related technical discipline. 
  • Five or more years of professional experience designing and operating big-data pipelines on Hadoop. 
  • Strong hands-on expertise with Apache Spark (Scala, Python, or Java) in production environments. 
  • Solid experience with Hive, HDFS, Sqoop, HBase, and the broader Hadoop ecosystem. 
  • Hands-on experience with streaming data platforms such as Kafka, Spark Streaming, or Flink. 
  • Strong SQL skills and experience working with both relational and NoSQL data stores. 
  • Experience with workflow orchestration tools such as Airflow or Oozie. 
  • Solid understanding of distributed systems concepts, including partitioning, replication, and fault tolerance. 
  • Strong scripting skills in Python or Shell. 
  • Excellent troubleshooting, debugging, and documentation skills. 
Preferred Qualifications 
  • Experience operating Hadoop on cloud platforms such as AWS EMR, Azure HDInsight, or Databricks. 
  • Familiarity with modern lakehouse formats (Delta, Iceberg, Hudi). 
  • Exposure to data governance tooling such as Apache Atlas or Collibra. 
  • Experience with Kubernetes-based data platforms (Spark-on-K8s, Trino). 
  • Hands-on experience with CI/CD and infrastructure-as-code in data engineering workflows.
How to Apply 
Would you like to know more about this opportunity? For immediate consideration, please send your resume to [email protected] or contact us at (908) 505-3544. Learn more about Bright Vision Technologies at www.bvteck.com.
Bright Vision Technologies is an Equal Opportunity Employer. 
 

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