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🧪Data Scientist

Data Scientist, Expert (Danville, CA, US, 94583)

Pacific Gas And Electric Company · Danville, CA, US, 94583
// classified as
Data Scientist (Modeling, experiments, research.)
posted
2d ago
location
Danville, CA, US, 94583
languages
python
tools
> stack
python
> description
<p>Requisition ID # 173213 </p> <p><p>Job Category: Information Technology </p> <p>Job Level: Individual Contributor</p> <p>Business Unit: Energy Delivery</p> <p>Work Type: Hybrid</p> <p>Job Location: San Ramon; Alameda; Alta; American Canyon; Angels Camp; Antioch; Auberry; Auburn; Avenal; Avila Beach; Bakersfield; Balch Camp; Bay Point; Bear Valley; Belden; Bellota; Belmont; Benicia; Berkeley; Brentwood; Brisbane; Buellton; Burney; Buttonwillow; Calistoga; Campbell; Canyon Dam; Canyondam; Capitola; Caruthers; Chico; Clearlake; Clovis; Coalinga; Colusa; Concord; Concord; Corcoran; Cottonwood; Cupertino; Daly City; Danville; Davis; Dinuba; Downieville; Dublin; Emeryville; Eureka; Fairfield; Folsom; Fort Bragg; Fortuna; Fremont; French Camp; Fresno; Fresno; Fulton; Garberville; Geyserville; Gilroy; Goodyear; Grass Valley; Guerneville; Half Moon Bay; Hayward; Hinkley; Hollister; Holt; Huron; Jackson; Kerman; King City; Lakeport; Lemoore; Lincoln; Linden; Livermore; Lodi; Loomis; Los Banos; Lower Lake; Madera; Magalia; Manteca; Manton; Mariposa; Martell; Marysville; Maxwell; Menlo Park; Merced; Meridian; Millbrae; Milpitas; Modesto; Monterey; Montgomery Creek; Morgan Hill; Morro Bay; Moss Landing; Mountain View; Napa; Needles; Newark; Newman; Novato; Oakdale; Oakhurst; Oakland; Oakley; Olema; Orinda; Orland; Oroville; Palo Alto; Palo Cedro; Paradise; Parkwood; Paso Robles; Petaluma; Pioneer; Pismo Beach; Pittsburg; Placerville; Pleasant Hill; Pleasanton; Point Arena; Potter Valley; Quincy; Rancho Cordova; Red Bluff; Redding; Richmond; Ridgecrest; Rio Vista; Rocklin; Roseville; Round Mountain; Sacramento; Salida; Salinas; San Bruno; San Carlos; San Francisco; San Francisco; San Jose; San Luis Obispo; San Mateo; San Rafael; Sanger; Santa Cruz; Santa Maria; Santa Nella; Santa Rosa; Selma; Shaver Lake; Sonoma; Sonora; South San Francisco; Springville; Stockton; Storrie; Taft; Tracy; Turlock; Twain; Ukiah; Vacaville; Vallejo; Walnut Creek; Wasco; Watsonville; West Sacramento; Wheatland; Whitmore; Willits; Willow Creek; Willows; Windsor; Winters; Woodland; Yuba City</p> <p> <p> <p> <p><p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black"><strong>Department Overview</strong></span></p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">Applied Technology Services (ATS) has been providing technology-based, innovative, high-value services to the company for over 50 years. ATS is a multidisciplinary team of over 130 engineers, scientists, and technicians. The ATS vision is to be a forward-thinking, technological leader providing high-value solutions and services needed across the Company. ATS high value services also help proactively avoid future problems by specifying equipment, materials and methods that are best practices in the industry.</span></p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black"><strong>Position Summary</strong></span></p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">Designs, develops, and executes scripts, programs, models, algorithms, and processes, using structured and unstructured data from disparate sources and sizes, generating for defensible, valid, scalable, reproducible models (predictive or optimization) for problem solving and strategy development. Participates in internal and external communities of practice in data science/artificial intelligence/machine learning to advance knowledge in the field. Educates the non-technical community on advantages, risks, and maturity levels of data science solutions. </span></p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">This position is hybrid, working from your remote office and your assigned location based on business need. Regular presence is required in San Ramon, once every two weeks.</span></p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">PG&amp;E is providing the salary range that the company in good faith believes it might pay for this position at the time of the job posting. This compensation range is specific to the locality of the job.  The actual salary paid to an individual will be based on multiple factors, including, but not limited to, specific skills, education, licenses or certifications, experience, market value, geographic location, and internal equity.  Although we estimate the successful candidate hired into this role will be placed towards the middle or entry point of the range, the decision will be made on a case-by-case basis related to these factors.</span></p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">Bay Area Minimum: $140,000</span></p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">Bay Area Mid: $189,000</span><br><span style="font-family:arial, helvetica, sans-serif;color:black">Bay Area Maximum: $238,000</span></p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">California Minimum: $133,000</span></p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">California Mid: $180,000</span></p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">California Maximum:$226,000</span></p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in 0.0in 8.0pt;line-height:115%;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">This job is also eligible to participate in PG&amp;E’s discretionary incentive compensation programs. </span></p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black"><strong>Job Responsibilities</strong></span></p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <ul style="margin-top:0.0in;margin-bottom:0.0in" type="disc"> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Researches and applies advanced knowledge of existing and emerging data science principles, theories, and techniques to inform business decisions.</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Creates advanced data mining architectures / models / protocols, statistical reporting, and data analysis methodologies to identify trends in structured and unstructured data sets</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Extracts, transforms, and loads data from dissimilar sources from across PG&amp;E</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Applies data science/ machine learning /artificial intelligence methods to develop defensible and reproducible predictive or optimization models that involve multiple facets and iterations in algorithm development. </span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Writes and documents reusable python functions and modular python code for data science.</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Assesses business implications associated with modeling assumptions, inputs, methodologies, technical implementation, analytic procedures and processes, and advanced data analysis.</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Works with sponsor departments and company subject matter experts to understand application and potential of data science solutions that create value.</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Presents findings and makes recommendations to senior management.</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Act as peer reviewer of complex models </span></li> </ul> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black"><strong>Qualifications</strong></span></p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">Minimum:</span></p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <ul style="margin-top:0.0in;margin-bottom:0.0in" type="disc"> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Bachelor’s Degree in Data Science, Machine Learning, Computer Science, Physics, Econometrics or Economics, Engineering, Mathematics, Applied Sciences, Statistics, or equivalent field</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">6 years in data science <strong><u>OR</u></strong> no experience, if possess Doctoral Degree or higher, as described above</span></li> </ul> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"><span style="font-family:arial, helvetica, sans-serif;color:black">Desired:</span></p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <ul style="margin-top:0.0in;margin-bottom:0.0in" type="disc"> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Doctorate Degree in Data Science, Machine Learning, or job-related discipline or equivalent experience</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Relevant industry (electric or gas utility, renewable energy, analytics consulting, etc.) experience</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Active participation in the external data science/artificial intelligence/machine learning community of practice, as demonstrated through volunteering in professional organizations for the advancement of the field, presentations in conferences or publications to disseminate data science knowledge and topics, or similar activities.</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Knowledge of industry trends and current issues in job-related area of responsibility as demonstrated through peer reviewed journal publications, conference presentations, open source contributions or similar activities</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Competency with commonly used data science and/or operations research programming languages, packages, and tools for building data science/machine learning models and algorithms  </span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Proficiency in explaining in breadth and depth technical concepts including but not limited to statistical inference, machine learning algorithms, software engineering, model deployment pipelines.</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Mastery in clearly communicating complex technical details and insights to colleagues and stakeholders</span></li> <li style="margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Mastery of the mathematical and statistical fields that underpin data science, specifically focused in reliability and failure analysis</span></li> <li style="line-height:15.0pt;margin-top:0.0in;margin-right:0.0in;margin-bottom:0.0in;font-size:12.0pt;font-family:arial, helvetica, sans-serif;color:black"><span style="font-family:arial, helvetica, sans-serif;color:black">Demonstrated proficiency in enterprise data platforms and analytics tools, including Foundry, SAP, and Power BI, with the ability to integrate and analyze data across ERP systems and visualization environments.</span></li> </ul> <p style="margin:0.0in 0.0in 0.0in 0.5in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p style="margin:0.0in;font-size:12.0pt;font-family:Aptos, sans-serif"> </p> <p> </p> <p> </p>