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AI​/Machine Learning Engineer; onsite

Job in Austin, Travis County, Texas, 78716, USA
Listing for: Vitaver & Associates, Inc
Full Time position
Listed on 2026-01-12
Job specializations:
  • IT/Tech
    AI Engineer, Machine Learning/ ML Engineer, Data Engineer, Cloud Computing
Salary/Wage Range or Industry Benchmark: 125000 - 150000 USD Yearly USD 125000.00 150000.00 YEAR
Job Description & How to Apply Below
Position: AI/Machine Learning Engineer (onsite)

14358 – AI/Machine Learning Engineer (onsite) – Austin, TX

Start Date: ASAP

Type: Temporary Project

Estimated Duration: 12+ months with possible extensions

Work Setting: Onsite. Working remotely is accepted in accordance with TxDOT’s policies. The resource must be in the office a minimum of four days a week, or as approved by TxDOT

Required
  • Availability to work 100% of the time at the Client’s site in Austin, TX (required);
  • Experience with Python production (8+ years)
  • Experience with AI/ML Production - Built and deployed 2-3+ ML models serving real users, not just experiments (8+ years)
  • Experience with AWS, Azure, GCP, or OCI for deploying and managing ML workloads (8+ years)
  • Experience with Docker and Kubernetes (8+ years)
  • Experience with Databases - SQL (Postgre

    SQL, MySQL) and No

    SQL/vector databases (8+ years)
  • Experience with scripting in both Bash and Power Shell for automation (8+ years)
  • Experience with transformers (BERT, GPT, T5), RAG systems, fine-tuning, prompt engineering, or building LLM applications
  • Experience with MLflow, Weights & Biases, Kubeflow, Airflow, or similar platforms
Preferred
  • Experience with CI/CD such as Azure Dev Ops, Git Hub Actions, Jenkins, or similar automation pipelines
  • Experience with PyTorch/Tensor Flow, OpenCV, object detection, segmentation, or real-time inference
  • Experience for performance-critical components (Go or Rust)
  • Experience with feature stores (Feast, Tecton) or advanced feature engineering
  • Experience with model optimization: quantization, pruning, knowledge distillation
  • Experience with edge deployment or resource-constrained model deployment
  • Experience with frameworks for A/B testing ML models
  • Experience with open-source ML projects
  • Experience with real-time streaming data processing (Kafka, Kinesis)
Responsibilities
  • Design, build, and deploy end‑to‑end AI/ML systems from initial concept through production, ensuring models serve real users at scale and comply with TxDOT’s governance and SDLC standards.
  • Develop scalable ML pipelines and data workflows using Python, cloud‑native services (Azure AI, AWS Sage Maker/Bedrock, GCP Vertex AI, OCI AI Services), and modern MLOps tooling such as MLflow, Kubeflow, Airflow, or Weights & Biases.
  • Implement and maintain production‑grade infrastructure for model training, deployment, monitoring, and distributed large‑scale training across multi‑GPU or multi‑node environments.
  • Engineer solutions leveraging advanced ML domains including NLP/LLMs (transformers, RAG, fine‑tuning), time‑series forecasting, anomaly detection, recommender systems, and vector/No

    SQL database integrations.
  • Develop Dev Ops‑aligned automation and containerized environments using Docker, Kubernetes, Bash, and Power Shell to support reliable CI/CD, reproducibility, and cloud‑based ML workload orchestration.
  • Create internal tools, frameworks, and CLI‑first utilities that improve team efficiency, accelerate experimentation, and support greenfield AI initiatives across TxDOT.
  • Collaborate with cross‑functional teams to translate ambiguous requirements into working AI solutions, providing technical leadership, identifying risks, ensuring compliance, and guiding the adoption of standardized AI governance practices.
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