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Associate Data Science R Jobs in California (NOW HIRING)

Associate Data Scientist

Los Angeles, CA · On-site

$63K - $64K/yr

The Associate Data Scientist will support analytics and machine learning initiatives, assisting ... Data Science, Computer Science, Statistics, Mathematics, Engineering, Economics, Operations ...

Associate Data Scientist

Los Angeles, CA

$63K - $64K/yr

Job Summary The Associate Data Scientist supports analytics, forecasting, and machine learning ... Data Science, Computer Science, Statistics, Mathematics, Engineering, Economics, Operations ...

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Associate Data Scientist

Los Angeles, CA · On-site

$63K - $64K/yr

Job Summary The Associate Data Scientist supports analytics, forecasting, and machine learning ... Data Science, Computer Science, Statistics, Mathematics, Engineering, Economics, Operations ...

Associate Data Analyst

Long Beach, CA · On-site

$85K - $115K/yr

Bachelor's degree in Data Science, Business, Engineering, Computer Science or related fields ... R. 120.62 is required. "U.S. Person" includes U.S. Citizen, U.S. National, lawful permanent ...

Associate Data Analyst

Long Beach, CA · On-site

$85K - $115K/yr

Bachelor's degree in Data Science, Business, Engineering, Computer Science or related fields ... R. 120.62 is required. "U.S. Person" includes U.S. Citizen, U.S. National, lawful permanent ...

Associate Data Scientist

Palo Alto, CA · On-site

$69K - $69K/yr

Quantifind is a data science technology company whose AI platform uncovers signals of risk across ... Scala/Java or R * Experience with SQL and/or Spark * Knowledge of data structures and algorithm ...

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Associate Data Science R information

Is 40 too late for data science?

Age is not a barrier to becoming a data scientist or an associate data science R. Many professionals transition into data science later in their careers by acquiring relevant skills such as programming in R or Python, understanding statistics, and completing certifications or courses. Employers value skills and experience over age, and continuous learning can help you succeed in the field regardless of when you start.

What can I do with an associate's degree in data science?

An associate's degree in data science prepares individuals for entry-level roles such as data analyst, data technician, or junior data scientist. These positions involve working with data collection, cleaning, basic analysis, and using tools like Excel, SQL, or Python. Additional certifications and hands-on experience can enhance job prospects in this field.

What is the 80 20 rule in data science?

In data science, the 80/20 rule, also known as Pareto principle, suggests that roughly 80% of results come from 20% of the efforts or features. Data scientists often use this rule to focus on the most impactful variables or tasks to improve model performance efficiently.

What jobs can I get with R?

With R skills, you can pursue roles such as data analyst, data scientist, statistical programmer, or research analyst. These positions typically require proficiency in data manipulation, statistical modeling, and visualization, often using R packages like ggplot2, dplyr, and caret, and may involve working in industries like finance, healthcare, or technology.
What are the most commonly searched types of Data Science R jobs in California? The most popular types of Data Science R jobs in California are:
What job categories do people searching Associate Data Science R jobs in California look for? The top searched job categories for Associate Data Science R jobs in California are:
What cities in California are hiring for Associate Data Science R jobs? Cities in California with the most Associate Data Science R job openings:
Research Associate Data Scientist

Research Associate Data Scientist

Cedars Sinai

Los Angeles, CA • On-site

$97K - $133K/yr

Other

Posted 3 days ago


Cedars-Sinai rating

8.6

Company rating: 8.6 out of 10

Based on 129 frontline employees who took The Breakroom Quiz

36th of 1,003 rated hospitals


Job description

Research Associate Data Scientist (Cedars-Sinai Medical Center; Los Angeles, CA): Assist with the development, evaluation, and application of computational and statistical methods, including artificial intelligence and machine learning algorithms and software for the analysis of biomedical data. Assist with the presentation and communication of scientific results through laboratory meetings, scientific conferences, and peer-reviewed publications. Create database-to-deployment pipelines for models using the necessary programming languages (primarily Python, R, and C++). Create sustainable data science infrastructure and adheres to data analysis/machine learning best practices. Perform exploratory data analysis to gauge the need for or appropriateness of advanced analytical methods. Work with senior or lead data scientists, research programmers, and principal investigators to identify areas where data science can best be applied to answer biomedical research questions. Test and validate code to ensure robustness of data applications. Perform all other duties as assigned. Participate in the development of innovative algorithms and analytical methods. Participate in the evaluation and interpretation of all analytical methods and results. Participate in the oral and written communication of scientific results including publications.

Minimum requirements: Master's degree or foreign equivalent in Electrical Engineering, Computer Science, Machine Learning, Applied Mathematics, Biomedical Imaging, or related field, plus three (3) years of experience as a Research Associate Data Scientist, Computer Engineer, Biomedical Data Scientist, or related occupation.

Must have experience with the following: Python, C++, and R; developing, testing, validating, and optimizing  production-level, version-controlled code (GitHub/GitLab and Azure DevOps) for algorithm development, statistical analysis, and deployment; implementing supervised and unsupervised learning algorithms (random forests, support vector machines, clustering, deep learning), with hands-on expertise training, fine-tuning, and deploying deep learning models using frameworks (PyTorch and TensorFlow), and adapting these methods to biomedical research problems; building end-to-end database-to-deployment pipelines including querying large relational databases (SQL), data cleaning, model training, validation, and deploying models in multiple computing environments; communicating scientific results effectively through peer-reviewed publications, patents, conference presentations, and internal technical reports; working with medical imaging data, including familiarity with industry-standard imaging formats (DICOM), image preprocessing workflows (segmentation, denoising, registration, resampling, and normalization), and use of imaging software libraries (SimpleITK, MONAI, or NiBabel) to prepare data for machine learning analysis; managing, processing, and optimizing large-scale 3D and 4D time-series datasets for deep learning model development on High-Performance Computing (HPC) or cloud-based GPU clusters.

Salary: $97,510 - $133,100 per year

To Apply: Any interested applicant may click on the APPLY NOW button above to apply for this position. 

Job Req ID: 18558

  • Assists with the development, evaluation, and/or application of computational and statistical methods including artificial intelligence and machine learning algorithms and software for the analysis of biomedical data.
  • Assists with the presentation and communication of scientific results through laboratory meetings, scientific conferences, and peer-reviewed publications.
  • Creates database-to-deployment pipelines for models using the necessary programming languages (primarily R, Python, SQL, neo4j).
  • Creates sustainable data science infrastructure and adheres to data analysis/machine learning best practices.
  • Performs data cleaning, quality control, and exploratory data analysis to gauge the need for or appropriateness of advanced analytical methods
  • Assists research, senior research, and/or lead research data scientists and principal investigators to identify areas where data science can best be applied to answer biomedical research questions.
  • Tests and validates code to ensure robustness of data applications with version control through GitHub.

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