Business Intelligence Engineer II, Retail Business Service Data Engineering Team

Amazon.com, Inc.
United States
9 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

Microsoft Excel Amazon Web Services Amazon Elastic Compute Cloud Amazon S3 Data Analysis Big Data Databases Information Engineering Extract Transform Load (ETL) Data Mining Data Visualization Data Warehousing
+22 more
Decision Support Systems Amazon DynamoDB R (Programming Language) Python (Programming Language) Lookup Table MATLAB Machine Learning NoSQL Oracle (Applications) Pivot Tables Power BI SAS (Software) SQL Databases Tableau (Software) Data Processing Scripting Macros Deep Learning Information Technology Vba Programming Language Qlikview Amazon Redshift

Job description

Retail Business Services (RBS) supports Amazon’s Retail business growth WW through three core tasks. These are (a) Selection, where RBS sources, creates and enrich ASINs to drive GMS growth; (b) Defect Elimination: where RBS resolves inbound supply chain defects and develops root cause fixes to improve free cash flow and (c) supports operational process for WW Retail teams.

Our team of high caliber software developers, applied scientists, data engineers, product managers and Business Intelligence Engineers use rigorous ML and deep learning approaches to ensure that we identify & fix the right catalog defect to ensure the good shopping experience for our customers.

We are looking for a customer-obsessed Business Intel Engineer that thrives in a culture of data-driven decision making who will be responsible to help us hold a high bar for RBS Data Engineering Team

This individual will be responsible for driving/creating:

· Experience working with large, multi-dimensional datasets from multiple sources

· Make recommendations for new metrics, techniques, and strategies to improve the operational and quality metrics.

· Proficient using at least one data visualization product (Tableau, Qlik, Amazon QuickSight, Power BI, etc.)

· Experience in deployment of Machine Learning and Statistical models

· Building new Python utilities and maintaining existing ones

· Enabling more efficient adhoc queries & analysis

· Working closely with research scientists, business analysts and product leads to scale data

· Ensuring consistency between various platform, operational, and analytic data sources to enable faster and more efficient detection and resolution of issues

· Exploring and learn the latest AWS technologies to provide new capabilities and increase efficiencies

· Mentoring the team on analytics best practices

Requirements

  • 3+ years of analyzing and interpreting data with Redshift, Oracle, NoSQL etc. experience
  • 2+ years of Tableau Desktop, Quicksight or other relevant data visualization software experience
  • Bachelor’s degree or above in business administration, finance, economics, computer science, data science, engineering, or other related field, or 2+ years of Amazon RME (BB/3P) Full Time Exempt experience
  • Experience with data visualization using Tableau, Quicksight, or similar tools
  • Experience with data modeling, warehousing and building ETL pipelines
  • Experience in Statistical Analysis packages such as R, SAS and Matlab
  • Experience using SQL to pull data from a database or data warehouse and scripting experience (Python) to process data for modeling
  • Experience using SQL (Structured Query Language) to pull data from a database or data warehouse
  • Experience using Python scripting to process data for modeling, * Master’s degree or above in BI, finance, engineering, statistics, computer science, mathematics or equivalent quantitative field
  • Knowledge of Microsoft Excel at an advanced level, including: pivot tables, macros, index/match, vlookup, VBA, data links, etc.
  • Experience with AWS solutions such as EC2, DynamoDB, S3, and Redshift
  • Experience in data mining, ETL, etc. and using databases in a business environment with large-scale, complex datasets
  • Experience developing and presenting recommendations of new metrics allowing better understanding of the performance of the business

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