Analytics Engineer
Lex Products
Shelton, CT, United States
4 days ago
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Role details
Contract type
Permanent contract
Employment type
Full-time (> 32 hours)
Experience level
Experienced
Experience required
2 years minimum
Working hours
Regular working hours
Job source
Tech stack
Amazon Web Services
Data Analysis
Microsoft Azure
Big Data
Cloud Computing
Data Architecture
Data Validation
Information Engineering
Data Governance
Data Infrastructure
Extract Transform Load (ETL)
Data Warehousing
+18 more
Apache Hadoop
Python (Programming Language)
Machine Learning
Power BI
Tensorflow
SQL Databases
Tableau (Software)
Data Processing
Google Cloud
Grafana
Apache Spark
Data Strategy
Scikit Learn
Information Technology
Data Analytics
Tools for Reporting
Data Pipelines
Programming Languages
Job description
- Data Pipeline Development:
- Design, build, and maintain scalable data pipelines to process and analyze large volumes of data from multiple sources.
- Ensure data is clean, reliable, and readily available for analysis, reporting, and data science applications.
- Optimize data workflows for performance, cost, and maintainability.
- Data Modeling and Analysis:
- Develop and maintain data models that reflect the company’s key business processes.
- Work with cross-functional teams to define and implement KPIs, dashboards, and reporting tools.
- Apply statistical methods and data science techniques to analyze complex datasets, identifying trends, patterns, and opportunities for improvement in manufacturing, product development, and sales strategies.
- Data Science and Machine Learning:
- Develop predictive models and machine learning algorithms to solve business problems and enhance decision-making processes.
- Collaborate with engineers and product teams to integrate data science solutions into existing products and services.
- Continuously explore new data science methodologies and tools to drive innovation within the company.
- Collaboration and Support:
- Partner with engineers, product managers, and business stakeholders to understand their data and analytics needs.
- Provide technical support and training to team members and other departments on the use of data tools, data science, and analytics best practices.
- Work closely with IT to ensure data infrastructure is aligned with company goals and industry best practices.
- Continuous Improvement:
- Identify opportunities to improve existing data processes, analytics tools, and data science methodologies.
- Stay current with industry trends, tools, and technologies in data engineering, data science, and analytics.
- Contribute to the development and execution of the company’s data strategy.
- Quality Assurance:
- Implement data validation, testing, and documentation processes to ensure the accuracy and reliability of analytics and data science outputs.
- Ensure compliance with data governance policies and best practices.
Requirements
- Bachelor’s degree in Business Analytics, Computer Science, Data Engineering, Data Science, or a related field. A Master’s degree is a plus.
- 2+ years of experience in data engineering, data science, or a related role, preferably in a manufacturing environment.
- Proficiency in SQL, Python, or other programming languages for data manipulation, analysis, and data science applications.
- Experience with ETL tools, data warehousing, cloud platforms (e.g., AWS, Azure, Google Cloud), and machine learning frameworks.
- Strong understanding of data modeling, data architecture, statistical analysis, and business intelligence tools (e.g., Power BI, Tableau, Grafana).
- Familiarity with big data technologies and frameworks (e.g., Hadoop, Spark) is a plus.
- Experience with machine learning algorithms, predictive modeling, and data science tools (e.g., TensorFlow, scikit-learn).
- Excellent problem-solving skills and attention to detail.
- Strong communication and collaboration skills with the ability to translate technical concepts to non-technical stakeholders.
- Ability to manage multiple projects and prioritize tasks in a fast-paced environment.
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