
Data Scientist – Expert
Pacific Gas and Electric Company
full-time
Posted on:
Location Type: Hybrid
Location: Oakland • California • United States
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Salary
💰 $140,000 - $238,000 per year
Tech Stack
About the role
- Designs, develops, and executes scripts, programs, models, algorithms, and processes using structured and unstructured data.
- Participates in internal and external communities of practice in data science/artificial intelligence/machine learning.
- Educates the non-technical community on advantages, risks, and maturity levels of data science solutions.
- Researches and applies advanced knowledge of existing and emerging data science principles, theories, and techniques to inform business decisions.
- Solves unique and complex strategic issues and problems while developing and monitoring budgets, forecast models, dashboards, presentations, and ad hoc analysis.
- Creates advanced data mining architectures / models / protocols, statistical reporting, and data analysis methodologies.
- Extracts, transforms, and loads data from dissimilar sources.
- Applies data science/machine learning/artificial intelligence methods to develop defensible and reproducible predictive models.
- Wrangles and prepares data as input of machine learning model development and feature engineering.
- Writes and documents reusable python functions and modular python code for data science.
- Assesses business implications associated with modeling assumptions, inputs, methodologies, technical implementation, and analytic procedures.
Requirements
- Bachelor’s Degree in Data Science, Machine Learning, Computer Science, Physics, Econometrics or Economics, Engineering, Mathematics, Applied Sciences, Statistics, or equivalent field.
- 6 years in data science OR no experience, if possess Doctoral Degree or higher, as described above.
- Relevant industry (electric or gas utility, renewable energy, analytics consulting, etc.) experience.
- Active participation in the external data science/artificial intelligence/machine learning community of practice.
- Competency with data science standards and processes (model evaluation, optimization, feature engineering, etc.)
- Knowledge of industry trends and current issues in job-related area of responsibility.
- Competency with commonly used data science and/or operations research programming languages, packages, and tools for building data science/machine learning models and algorithms.
- Proficiency in explaining in breadth and depth technical concepts including but not limited to statistical inference, machine learning algorithms, software engineering, model deployment pipelines.
- Mastery in clearly communicating complex technical details and insights to colleagues and stakeholders.
- Mastery of the mathematical and statistical fields that underpin data science.
- Ability to develop, coach, teach and/or mentor others to meet both their career goals and the organization goals.
Benefits
- PG&E’s discretionary incentive compensation programs
Applicant Tracking System Keywords
Tip: use these terms in your resume and cover letter to boost ATS matches.
Hard Skills & Tools
data sciencemachine learningartificial intelligencedata miningpredictive modelingfeature engineeringstatistical reportingdata analysispythonmodel evaluation
Soft Skills
communicationcoachingmentoringproblem-solvingcollaborationeducatingstrategic thinkingbudget managementpresentation skillsanalytical thinking