Level

UPSPosted 31mo ago

Data Scientist

Data Scientist at UPS scores 87 out of 100 on AI centrality, which makes it AI Level 4 of 4 (Builds AI) on this board. The level measures how much of the work is AI, not seniority.

IN - CHENNAI CENTER (INMAA)Full time

AI in this role

pytorchtensorflowkerassagemakerdatabricks

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Explore your next opportunity at a Fortune Global 500 organization. Envision innovative possibilities, experience our rewarding culture, and work with talented teams that help you become better every day. We know what it takes to lead UPS into tomorrow—people with a unique combination of skill + passion. If you have the qualities and drive to lead yourself or teams, there are roles ready to cultivate your skills and take you to the next level.

Job Description:

DATA SCIENTIST

JOB SUMMARY

This Data Scientist creates and implements advanced analytics models and solutions to yield predictive and prescriptive insights from large volumes of structured and unstructured data. This position works with a team responsible for the research and implementation of predictive requirements by leveraging industry standard machine learning and data visualization tools to draw insights that empower confident decisions and product creation. This position leverages emerging tools and technologies available in On-prem and Cloud environments. This position utilizes industry standard machine learning and data visualization tools to transform data and analytics requirements into predictive solutions and provide data literacy on a range of machine learning systems at UPS. This position identifies opportunities for driving descriptive to predictive and prescriptive solutions, which become inputs to department and project teams on their decisions supporting projects.

RESPONSIBILITIES

  • Defines key data sources from UPS and external sources to deliver models.
  • Develops and implements pipelines that facilitates data cleansing, data transformations, data enrichments from multiple sources (internal and external) that serve as inputs for data and analytics systems. 
  • For larger teams, works with data engineering teams to validate and test data and model pipelines identified during proof of concepts. 
  • Develops data design based on the exploratory analysis of large amounts of data to discover trends and patterns that meet stated business needs.
  • Defines model key performance indicator (KPI) expectations and validation, testing, and re-training of existing models to meet business objectives.
  • Reviews and creates repeatable solutions through written project documentation, process flowcharts, logs, and commented clean code to produce datasets that can be used in analytics and/or predictive modeling.
  • Synthesizes insights and documents findings through clear and concise presentations and reports to stakeholders.
  • Presents operationalized analytic findings and provides recommendations.
  • Incorporates best practices on the use of statistical modeling, machine learning algorithms, distributed computing, cloud-based AI technologies, and run time performance tuning with the goal of deployment and market introduction.
  • Leverages emerging tools and technologies together with the use of open-source or vendor products in the creation and delivery of insights that support predictive and prescriptive solutions.

QUALIFICATIONS

  • Expertise in R, SQL, Python and/or any other high-level languages.
  • Exploratory data analysis (EDA), data engineering and development of advanced analytics models.
  • Experience in development of AI and ML using platforms like VertexAI, Databricks or Sagemaker, and familiarity with available frameworks like PyTorch, Tensorflow and Keras.
  • Experience applying models from small to medium scaled problems.
  • Strong analytical skills and attention to detail. 
  • Able to engage key business and executive-level stakeholders to translate business problems to a high-level analytics solution approach.
  • Expertise with statistical techniques, machine learning, and/or operations research and their application in business.
  • Deep understanding of data management pipelines and experience in launching moderate scale advanced analytics projects in production.
  • Demonstrated experience in Cloud-AI technologies and knowledge of environments both in Linux/Unix and Windows. 
  • Experience implementing open-source technologies and cloud services; with or without the use of enterprise data science platforms.
  • Core AI / Machine Learning knowledge and application in supervised and unsupervised learning domains.
  • Familiarity with Java or C++ is a plus.
  • Solid oral and written communication skills, especially around analytical concepts and methods. 
  • Ability to communicate data through a story framework to convey data-driven results to technical and non-technical audiences.
  • Master’s Degree in a quantitative field of mathematics, computer science, physics, economics, engineering, statistics (operations research, quantitative social science, etc.), international equivalent, or equivalent job experience.

Last Day Posted - 2/25/2024


Employee Type:
 

Permanent


UPS is committed to providing a workplace free of discrimination, harassment, and retaliation.

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Skills and AI tools this role asks for

PyTorchTensorFlowKerasSagemakerDatabricks

Questions you could be asked

  1. What's a project where you used PyTorch hands-on?
  2. Walk me through how you've used TensorFlow in your day-to-day work.
  3. What are the limits of Keras that you've run into, and how did you work around them?
  4. What's a project where you used Sagemaker hands-on?
  5. Walk me through how you've used Databricks in your day-to-day work.

Adapt your resume

  • List these exact terms on your resume: PyTorch, TensorFlow, Keras, Sagemaker, and Databricks. An applicant tracking system matches the wording, not the idea.
  • Attach one line of real, concrete experience to at least one of them — a tool named with nothing behind it rarely survives a human read.
  • Lead with what you built, trained or shipped — this role is judged on the AI system itself, not the tools around it.

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