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Data Scientist Generative AI

Job in Atlanta, Fulton County, Georgia, 30383, USA
Listing for: Highbrow LLC
Full Time position
Listed on 2025-12-27
Job specializations:
  • IT/Tech
    AI Engineer, Machine Learning/ ML Engineer
Salary/Wage Range or Industry Benchmark: 125000 - 150000 USD Yearly USD 125000.00 150000.00 YEAR
Job Description & How to Apply Below
Position: Data Scientist with Generative AI Experience

Job Title :

-
Data Scientist with Generative AI Experience

Employment Type

:

- W2

Duration :

- Long Term

Visa Type :

- All Visa applicable which are ready for W2

Location
- Atlanta, GA (Day-1 Onsite)

Job Description:
  • Min of 6+ years of experience in data science, with at least 2 years focused on developing and deploying Generative AI models (e.g., GANs, transformers).
    Proven track record of building and implementing machine learning models and generating insights from data in a business context.
  • Technical Skills
    – Strong proficiency in machine learning frameworks and libraries, such as Tensor Flow, PyTorch, and Scikit-Learn.
    – Expertise in Generative AI models (e.g., GANs, VAEs, and transformer-based models like GPT, BERT) with hands-on experience in training, fine-tuning, and deploying these models.
    – Proficient in data wrangling and preprocessing with tools like Pandas, Num Py, and experience in managing both structured and unstructured data.
    – Programming proficiency in Python and R, with experience in other languages (e.g., SQL) for data manipulation and retrieval.
    – Familiarity with cloud platforms (AWS, GCP, Azure) and their services for AI/ML, including model deployment and monitoring (e.g., AWS Sage Maker, Google AI Platform).
  • Generative AI Skills
    Hands-on experience with large language models (LLMs) and understanding of advanced NLP techniques, such as text generation, summarization, and sentiment analysis.
    – Knowledge of GAN architectures for synthetic data generation, image processing, and computer vision applications.

    Experience with fine-tuning pretrained models and applying transfer learning techniques to improve generative model performance.
    – Familiarity with prompt engineering and model customization for specific applications (e.g., chatbots, content generation).
    – Understanding of evaluation metrics and methods for Generative AI models, ensuring models perform reliably and ethically in production.
  • Data Science and Analytical Skills
    – Expertise in statistical analysis, hypothesis testing, and interpreting data to derive actionable insights.
    – Strong data visualization skills using tools like Matplotlib, Seaborn, or Tableau to communicate findings and model results to stakeholders.
    – Experience in A/B testing, experimentation, and analysis to validate model performance and impact.
    – Ability to define, measure, and monitor key performance indicators (KPIs) to assess model effectiveness and alignment with business goals.
    – Proven ability to work with big data frameworks like Apache Spark or Hadoop for large-scale data processing.
  • Communication and Collaboration Skills
    Strong communication skills, with the ability to explain complex AI concepts to non-technical stakeholders and collaborate across teams.
    – Experience in documenting data science processes, model architectures, and analytical findings in a clear and organized manner.
    – Proven ability to work collaboratively in cross-functional teams with engineers, product managers, and designers to align on project goals.
    – Strong presentation skills for delivering data-driven insights and Generative AI use cases to business leaders and decision-makers.
  • Additional Qualifications
    – Familiarity with data privacy and ethical considerations in AI, including bias mitigation, fairness, and compliance with industry regulations.
    – Experience in a specific industry like Telecommunications is a plus.
    – Demonstrated commitment to continuous learning, staying updated on the latest AI advancements and generative models.
    – Knowledge of MLOps and model monitoring tools (e.g., MLflow, Kubeflow) to ensure model reliability in production.

Education:

  • Bachelor’s or Master’s degree in Computer Science, Computer or Electrical Engineering, Mathematics, or a related field.
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