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KANINI

Senior AI Engineer/Data Scientist

Posted Yesterday
In-Office or Remote
Hiring Remotely in Nashville, TN
Senior level
In-Office or Remote
Hiring Remotely in Nashville, TN
Senior level
Own the complete data science lifecycle for a flagship predictive modeling project. Responsibilities include analyzing and engineering multi-source data, building production-grade pipelines, developing and deploying supervised, unsupervised, reinforcement, deep learning, NLP, and forecasting models, monitoring performance, documenting work, communicating insights, and mentoring junior team members.
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This is a remote position.

Scope:

We are hiring a pioneering, fully autonomous Senior AI Engineer/Data Scientist to own the complete data science lifecycle for our flagship prediction model project. This role is mission-critical — the candidate will be the single point of expertise responsible for sourcing, analyzing, and engineering all data that powers our predictive models. Operating independently with minimal supervision, this individual must combine deep AI/ML mastery, hands-on engineering skills, and sharp business acumen to deliver measurable, production-grade outcomes. 

 

Key Responsibilities:

Data Analysis & Pipeline Ownership

Lead end-to-end analysis of large, complex, multi-source datasets to surface patterns driving model inputs

Identify, collect, clean, validate, and transform all data required for prediction model consumption

Design and maintain scalable, production-grade data pipelines (training, validation, inference)

Perform deep EDA, data profiling, and quality audits to ensure model-ready data standards

Predictive Modeling & AI/ML

Architect, train, evaluate, and iterate ML models — supervised, unsupervised, and reinforcement learning

Own feature engineering: selection, extraction, transformation, and dimensionality reduction

Apply advanced techniques: deep learning, NLP, time-series forecasting, ensemble methods

Benchmark, A/B test, and monitor models in production; drive continuous performance improvement

Deploy models via REST APIs (FastAPI/Flask); ensure reproducibility and scalability

Independent Ownership & Leadership

Self-direct from problem definition through solution delivery with zero hand-holding

Translate ambiguous business problems into precise, executable data science problem statements

Communicate model results and data insights clearly to technical and non-technical stakeholders

Document all experiments, methodologies, and outcomes — audit-ready and reproducible

Champion best practices across the data science lifecycle; mentor junior team members

 

 

QUALIFICATIONS 

 B.S./M.S./Ph.D. in Computer Science, Statistics, Mathematics, or equivalent quantitative field (Master's/Ph.D. strongly preferred) 

 5+ years of hands-on data science experience with at least 2 years delivering production-grade ML models 

 Proven ability to own and deliver end-to-end data science projects independently 

 Portfolio demonstrating innovation in predictive modeling and measurable business impact 

 Kaggle rankings, research publications, or open-source ML contributions are a strong plus 

  Experience in a fast-paced, data-driven, decision-model environment

 

 

REQUIRED SKILLS & QUALIFICATIONS 

Core Data Science & Mathematics 

 Statistics (Bayesian inference, hypothesis testing, regression, distributions) 

 Linear algebra, calculus, and probability applied to ML model design 

 Supervised & unsupervised learning, anomaly detection, clustering 

 Time-series analysis & forecasting: ARIMA, Prophet, LSTM 

 

Programming & Development 

 Python (Expert): NumPy, Pandas, Scikit-learn, Statsmodels, Matplotlib, Plotly 

 SQL (Advanced): window functions, CTEs, query optimization 

 Git / GitHub; CI/CD for ML; MLOps with MLflow or Kubeflow 

 Docker & Kubernetes for model containerization and serving 

 

AI / ML Frameworks (Must-Have) 

 TensorFlow and/or PyTorch — deep learning architectures 

 XGBoost, LightGBM, CatBoost — gradient boosting & ensemble methods 

 Hugging Face Transformers — NLP, LLMs, and fine-tuning 

 SHAP, LIME — model explainability and interpretability 

 LLMs / Generative AI / Prompt Engineering — strong advantage 

 

Cloud & Data Infrastructure 

 AWS (SageMaker, S3, Glue), GCP (Vertex AI, BigQuery), or Azure ML 

 Apache Spark / PySpark — distributed data processing 

 Airflow / Prefect — pipeline orchestration 

 

Snowflake (Good to Have) 

 Snowflake Data Cloud: querying, Snowpark for Python ML pipelines 

 Snowflake Cortex AI / ML Functions for in-database ML 

 dbt for data transformation; data governance within Snowflake 

 



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