About the Role
We're looking for a sharp, fast\-moving AI\ / ML engineer who thrives in ambiguity and gets excited about building
things from scratch. You'll be tackling greenfield projects across various ML domains \- whether that's NLP,
time series forecasting, recommendation systems, or computer vision.
The path isn't always clear, and your ability to think on your feet and problem\-solve in real\-time will be critical.
This isn't a role for someone who needs detailed specs and hand\-holding. We need someone who can figure it
out, move fast, and ship production\-quality code.
What You'll Build
⢠AI\ / ML systems from the ground up \- you'll own projects from conception to production
⢠Scalable ML pipelines and data workflows
⢠Production\-grade models serving real users at scale
⢠MLOps infrastructure for training, deployment, and monitoring
⢠Internal tooling that makes the team more efficient
⢠Work primarily in the terminal \- if you're comfortable in vim\ / neovim and live in the CLI, you'll fit right in
Required Skills
Core Technical (Non\-Negotiable)
⢠Python \- 3\-5+ years production experience, this is your primary language
⢠AI\ / ML Production \- Built and deployed 2\-3+ ML models serving real users, not just experiments
⢠Cloud Platforms \- Experience with AWS, Azure, GCP, or OCI for deploying and managing ML workloads. We leverage AI\ / ML tools across all major cloud providers (Azure AI, AWS SageMaker\ / Bedrock, GCP Vertex AI, OCI AI Services)
⢠DevOps \- Docker and Kubernetes experience
⢠Databases \- SQL (PostgreSQL, MySQL) and NoSQL\ / vector databases
⢠Scripting \- Proficient in both Bash and PowerShell for automation
ML Domains (Must have strong experience in at least 2\-3 of these)
⢠NLP\ / LLMs : Experience with transformers (BERT, GPT, T5), RAG systems, fine\-tuning, prompt
engineering, or building LLM applications
⢠Time Series : Forecasting models, anomaly detection, sequential data modeling, or real\-time monitoring
systems
⢠Recommender Systems : Collaborative filtering, ranking models, personalization engines, or content
recommendations
⢠MLOps Tools : Production experience with MLflow, Weights & Biases, Kubeflow, Airflow, or similar
platforms
⢠Distributed Training : Large\-scale model training, multi\-GPU\ / multi\-node setups, efficient data
parallelism
Working Style (Critical)
⢠CLI\-first developer \- you're comfortable (and prefer) working in the terminal
⢠Fast thinker \- you can rapidly assess problems, prototype solutions, and iterate
⢠Problem solver \- you don't need the answer handed to you; you figure it out
⢠Greenfield\-ready \- you're energized by building new things, not just maintaining existing systems
⢠Self\-directed \- you can take ambiguous requirements and turn them into working solutions
Nice to Have
⢠CI\ / CD Experience : Azure DevOps, GitHub Actions, Jenkins, or similar automation pipelines
⢠Computer Vision : Production CV experience with PyTorch\ / TensorFlow, OpenCV, object detection, segmentation, or real\-time inference
⢠Additional Languages : Go or Rust experience for performance\-critical components
⢠Feature stores (Feast, Tecton) or advanced feature engineering
⢠Model optimization : quantization, pruning, knowledge distillation
⢠Edge deployment or resource\-constrained model deployment
⢠Experiment frameworks for A\ / B testing ML models
⢠Contributions to open\-source ML projects
⢠Real\-time streaming data processing (Kafka, Kinesis)
What We're NOT Looking For
⢠Someone who needs extensive documentation before starting
⢠Developers who only work with GUIs
⢠People uncomfortable with ambiguity or rapid change
⢠Engineers who need constant direction
⢠Junior developers still learning ML fundamentals
Our Stack
Core : Python | PyTorch\ / TensorFlow | Scikit\-learn | FastAPI\ / Flask | Git | Bash\ / PowerShell
ML\ / AI Tools : MLflow | Airflow\ / Kubeflow | Azure AI | AWS SageMaker\ / Bedrock | GCP Vertex AI | OCI AI
Services
Infrastructure : Docker | Kubernetes | AWS\ / Azure\ / GCP\ / OCI | PostgreSQL | Azure DevOps | GitHub Actions
Experience Level
⢠3\-5+ years in AI\ / ML engineering roles
⢠Proven track record of shipping 0\-to\-1 ML projects
⢠Production ML experience (not just research or coursework)
Why Join Us
⢠Real impact : Your work directly affects our product and users
⢠Technical freedom : Choose your tools, own your decisions
⢠Fast feedback loops : See your code in production within days, not months
⢠No red tape : Small team, direct access to leadership
⢠Cutting edge : Work with latest ML\ / AI tech, not maintaining legacy systems
⢠Growth : Own entire ML systems end\-to\-end and influence technical direction
Interview Process
â
1. Quick call (30 min) \- culture fit, basic technical discussion
2. Technical challenge (take\-home, 2\-3 hours) \- build something real
3. Live problem solving (60 min) \- work through a realistic ML problem together
4. Team meet (30 min) \- meet potential teammates
To Apply :
Send your resume and briefly describe :
1. The most challenging greenfield ML project you've built
2. Which 2\-3 ML domains (from our list) do you have the most production experience in
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Ai Ml Engineer • Sealy, Texas, United States