Software Engineer- Data Engineering

Noctua Technology, Inc.
Reston, VA, United States
2 months ago
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Role details

Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Working hours
Regular working hours

Tech stack

Clean Code Principles Java (Programming Language) Airflow Amazon Web Services Data Analysis Microsoft Azure C++ (Programming Language) Cloud Computing Computer Programming Databases Information Engineering Extract Transform Load (ETL)
+32 more
Data Migration Data Visualization Data Warehousing Relational Databases Apache Hadoop Python (Programming Language) PostgreSQL Machine Learning MySQL NoSQL Power BI Software Engineering SQL Databases Tableau (Software) Data Processing Google Cloud Data Storage Technologies Apache Spark Jupyter Data Strategy Git Pandas Containerization Kubernetes Information Technology Qlikview Apache Kafka Dynamic Data Looker Analytics Software Version Control Data Pipelines Docker

Job description

Data Collection and Processing

Acquire, clean, and preprocess diverse datasets from various sources. Build required infrastructure for optimal extraction, transformation and loading of data from various data sources using CSP managed services and SQL technologies Develop and maintain data pipelines to ensure a continuous flow of high-quality data

Data Migrations & Optimization

Develop data migration strategies and schemas to lead customer migrations from on-prem to cloud technologies Perform data migration activities Optimize databases and data warehouses for efficient querying and data storage

Data Analysis and Visualization

Perform exploratory data analysis to uncover patterns, trends, and insights. Create visualizations and reports to communicate findings effectively to stakeholders both internally and externally

Collaboration and Documentation

Collaborate with cross-functional teams, including software engineers, domain experts, and business analysts, to understand requirements and deliver integrated solutions. Create and maintain comprehensive documentation for code, algorithms, and models. Ensure that the knowledge is shared and accessible within the team.

Customer Engagement

Act on client feedback constructively to improve services and outcomes. Continuously seek ways to enhance the overall customer experience.

Continuous Learning and Innovation

Stay updated on the latest developments in machine learning, data science, and analytics. Drive innovation by proposing and implementing new techniques and technologies.

Requirements

We are seeking a talented and motivated Data Engineer to join our dynamic Data Engineering & Analytics team. As a key member of our engineering team, you will play a crucial role in constructing and optimizing data pipelines, implementing efficient storage solutions, and orchestrating the infrastructure necessary to support our customer’s data-driven initiatives.

Location: Primarily Remote. Candidates must be based in CA or DC Metro Area for proximity to project and client teams.

Security Clearance Requirement: Applicants must be US citizens and eligible to obtain and maintain an active Secret security clearance or above., Solid understanding and experience with SQL and relational database concepts Solid understanding of database technologies, data warehouses, and ETL tools (e.g., MySQL, PostgreSQL, Beam, Airflow, and Kafka). Experience with data analysis tools (eg., Jupyter, Colab, Pandas) Experience with data visualization tools (eg., Tableau, Looker, PowerBI, Qlik, and SuperSet) Previous experience developing data strategies and facilitating data migrations into production systems. Experience with cloud platforms (e.g., AWS, Azure, GCP). Proficiency in programming languages such as Python, Java, or C++. Strong software engineering skills with an emphasis on writing clean, modular, and maintainable code. Familiarity with version control systems (e.g., Git) and collaborative development workflows. Excellent problem-solving and critical-thinking skills. Effective communication skills and ability to work in a collaborative team environment., Bachelor’s or advanced degree in Computer Science, Data Science, Machine Learning, or a related field. Experience with other database technologies (eg., NoSQL, Graph) Any of the below cloud certifications: Google Cloud Professional Cloud Architect Google Cloud Professional Database Engineer certification Google Cloud Professional Data Engineer Experience with additional data processing tools and technologies (e.g., Spark, Hadoop). Knowledge of containerization and orchestration tools (e.g., Docker, Kubernetes).

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