Principal Software Developer
Job in
Dothan, Houston County, Alabama, 36303, USA
Listed on 2026-05-31
Listing for:
Octave
Full Time
position Listed on 2026-05-31
Job specializations:
-
IT/Tech
AI Engineer, Machine Learning/ ML Engineer, Data Scientist
Job Description & How to Apply Below
Job Location (Short):
Houston, Texas-USA | Madison, Alabama-USA
Workplace Type:
Remote
Req
We are seeking a motivated AI/ML Engineer to build reliable, scalable systems and Generative AI and Agentic AI features, and build and deploy data‑driven solutions for our document‑based compliance management platform. This role requires a technical expert who can develop, deploy, and maintain ML systems in production environments.
Key Responsibilities- Build and deploy Generative AI features using foundation models (AWS Bedrock, OpenAI, Anthropic Claude) and inference pipelines with optimization of latency and cost
- Design agentic AI systems that autonomously handle compliance workflows, document review, regulatory mapping, and multi‑step reasoning tasks
- Integrate comprehensive LLM evaluation frameworks with development and production systems
- Build and operate end‑to‑end MLOps pipelines, deployment systems, monitoring, and rollbacks workflows
- Implement explainability frameworks (SHAP/LIME) and monitoring dashboards ensuring transparency and regulatory adherence
- Collaborate with cross‑functional teams to translate business needs into ML solutions and communicate insights to stakeholders
- Python (5+ years):
Production‑level experience with Pandas, Num Py, scikit‑learn, XGBoost, Tensor Flow/PyTorch, Hugging Face Transformers, FastAPI/Flask, MLflow, and pytest - SQL:
Advanced proficiency with complex queries, window functions, and optimization - Machine Learning & NLP:
Strong foundation in supervised/unsupervised learning, deep learning, document understanding, text classification, and semantic analysis - Generative AI & LLMs:
Hands‑on experience with foundation models (GPT, Claude, Llama), prompt engineering, RAG architectures, and vector databases (Pinecone, Weaviate, Chroma) - MLOps & Model Ops:
End‑to‑end experience with ML pipelines, model versioning, feature stores, drift detection, CI/CD for ML, and Docker containerization - LLM Evaluation:
Experience with evaluation frameworks (RAGAS, Deep Eval), custom metrics, benchmark datasets, and human‑in‑the‑loop validation - Cloud & AWS:
Experience with AWS services including Sage Maker, Bedrock, S3, Lambda, EC2, and Cloud Watch - Statistics & Experimentation:
Strong foundation in statistics, A/B testing, causal inference, and experimental design - Visualization:
Proficiency with Tableau, Power BI, or Python visualization libraries
- 5+ years in data science, ML engineering, or related roles
- 3+ years building NLP/generative AI applications and implementing MLOps in production
- Bachelor's or Master's degree in Data Science, Computer Science, Statistics, or related field
- Track record of deploying ML systems processing large‑scale datasets with proper monitoring and governance
- Experience with agentic AI frameworks (Lang Graph, Lang Chain, Auto Gen, CrewAI)
- Knowledge of Life Sciences/regulated industries (FDA, EMA, ISO, GxP) and compliance management systems
- Familiarity with big data tools (Spark, Databricks, Snowflake), orchestration (Airflow, Kubeflow), and monitoring tools (Datadog, Prometheus)
- Experience with LLM fine‑tuning, document processing libraries, multi‑modal AI, or distributed training
- Understanding of ML governance, bias detection, model risk management, and data privacy regulations (GDPR, CCPA, HIPAA)
- Experience working in agile environments with Jira
- AWS ML certifications or similar credentials
- Strong communication skills explaining complex models to technical and nontechnical audiences
- Ability to work independently and collaboratively in fast‑paced environments
- Proven ability to convert POCs into production‑grade solutions
- Understanding of ethical AI and building trustworthy, explainable systems for regulated environments
- LLM evaluation frameworks ensuring 95%+ accuracy for compliance‑critical features
- Prompts for LLMs to achieve specific, high‑quality outcomes
- Agentic AI systems autonomously handling document review and compliance workflows
- GenAI document understanding features processing millions of regulatory documents
- Predictive models identifying compliance risks before they occur
- Real‑time semantic search and explainable ML systems meeting regulatory requirements
- Production MLOps pipelines supporting dozens of models with automated monitoring and retraining
- Drive adoption of emerging AI technologies and establish best practices
- Mentor ML engineers
- Shape AI/ML roadmap and establish center of excellence for compliance AI
- Collaborate with product leadership on long‑term vision for AI‑powered compliance
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