> Markdown version of [/jobs/ext/3040130-senior-data-scientist](https://www.wearedevelopers.com/jobs/ext/3040130-senior-data-scientist). Every page supports `.md` or `Accept: text/markdown`. Links point to the HTML versions so they work for humans too. Agent guide: [/agents.md](https://www.wearedevelopers.com/agents.md). --- # Senior Data Scientist - **Company:** Iquasar, LLC. - **Location:** Fort Rucker, AL, United States (Remote available) - **Experience:** Expert - **Contract:** Permanent contract - **Skills:** Artificial Intelligence, Amazon Web Services, Automated Storage and Retrieval Systems, JIRA, Microsoft Azure, Encodings, Data Governance, Github, Graph Database, Python (Programming Language), Machine Learning, Neo4j, Tensorflow, SAS (Software), Software Engineering, SQL Databases, Data Processing, Cloud Platform System, Feature Engineering, Pytorch, Large Language Models, Deep Learning, Generative AI, Git, Knowledge Representation, Amazon Relational Database Service, Scikit Learn, Information Technology, Machine Learning Operations, GPT, Software Version Control - **Published:** September 23, 2026 - **Apply:** https://www.wayup.com/i-j-Senior-Data-Scientist-IQUASAR-LLC-578838203582202/ ## About the Role Minimum 8 years of hands-on experience in AI/ML software development using Python and R. Strong background in deep learning, transformer-based NLP, and classical ML. Experience with RAG, LLMs, and embedding-based retrieval systems. Expertise in data wrangling, Web scrapping, data standardization, and feature engineering. Proven experience working with vector databases (e.g., FAISS, Pinecone, Weaviate) or graph databases (e.g., Neo4j). Strong understanding of ML frameworks such as TensorFlow, PyTorch, and scikit-learn. Familiarity with version control systems (e.g., Git, GitHub). Experience with cloud computing platforms (AWS, GCP, or Azure). Demonstrated ability to produce high-quality technical documentation and research publications. Master's degree or Ph.D. in Statistics, Computer Science, or a related quantitative discipline. Preferred Qualifications: Hands-on experience with SAS, SQL, Amazon RDS, and JIRA. Knowledge of ML Ops practices and model deployment pipelines. Prior experience in contributing to academic or technical publications. Exposure to federal or enterprise-scale projects is a plus. ## Description Lead development of predictive models using deep learning and classical machine learning algorithms. Build and optimize NLP models leveraging transformer-based architectures (e.g., BERT, GPT). Design and implement Retrieval-Augmented Generation (RAG) approaches for LLM-based applications. Work with vector databases and graph databases for knowledge representation and retrieval. Generate and use simulated data to support training and testing of ML models. Perform data standardization, aggregation, and integration from structured and unstructured sources. Collaborate with cross-functional teams to understand business needs and translate them into ML solutions. Document workflows, produce technical reports, and contribute to academic or industry publications. Use version control tools to manage collaborative model development (e.g., GitHub). 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