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Machine Learning Engineer
Job in
Santa Barbara, Santa Barbara County, California, 93190, USA
Listed on 2026-06-07
Listing for:
AppFolio, Inc
Full Time
position Listed on 2026-06-07
Job specializations:
-
Software Development
AI Engineer, Machine Learning/ ML Engineer
Job Description & How to Apply Below
Staff Machine Learning Engineer – Software Engineering
Locations:
Santa Barbara, CA;
San Diego, CA;
Remote - San Francisco, CA;
Remote - Denver, CO.
We’re building an AI‑native platform for the real estate industry and are looking for a Staff Machine Learning Engineer to advance the ML platform that underpins all of App Folio’s AI initiatives.
Your Impact- ML Platform:
Design and operate App Folio’s ML infrastructure on AWS – ECS, Sage Maker, GPU fleets, model serving, autoscaling, and cost controls. - Drive AI Cost Discipline:
Optimize cost across all AI applications – provider routing, caching, batch vs. real‑time, model-size selection, and inference economics. - Multi‑Provider Reliability:
Maintain reliable, multi‑provider LLM access across Google, OpenAI, and Anthropic with sensible fallbacks and abstractions. - Training & Fine‑Tuning Stack:
Build the training and fine‑tuning stack for small language models, including data pipelines, GPU orchestration, and evaluation. - Productionize Research:
Partner with Voice & Agents and Research ML engineers to harden prototypes into production systems with SLOs, on‑call rotations, and observability. - AI Safety & Guardrails:
Operate App Folio’s AI safety and authorization layer – guardrails on AWS, scoped tool permissions, and human‑in‑the‑loop gates for autonomous agent actions.
- Systems thinker:
Think in terms of platforms and long‑term leverage, not just features. - Production builder:
Built and scaled ML infrastructure in production with meaningful business impact. - Ambiguity:
Operate effectively in high ambiguity, turning unclear infra problems into clear direction. - Owner‑operator:
Take ownership with a founder/owner‑operator mindset, act with urgency, and focus on outcomes. - Pace:
Strong desire to move fast and deliver impact while maintaining sound engineering judgment. - Collaboration:
Humble, collaborative, low‑ego, and elevate those around you. - Sustainability:
Value work‑life balance as a foundation for sustained high performance. - Reliability mindset:
Treat ML infra like any other production system – SLOs, on‑call, observability, postmortems.
- ML infra at scale:
Built and operated production ML infrastructure on AWS – ECS, Sage Maker, GPUs, autoscaling, and cost controls. - Inference platforms:
Production experience with model serving for both LLMs and custom models; understands quantization, batching, and routing. - Provider breadth:
Direct experience integrating with Google (Vertex/Gemini), OpenAI, and Anthropic APIs in production. - Training capability:
Trained or fine‑tuned language models end‑to‑end; comfortable with deep learning, evaluation, and inference. - Cloud‑native engineering:
Strong Python, Docker, dependency management, and CI/CD for AI workloads. - RAG & agents:
Working knowledge of Lang Chain / Lang Graph and modern RAG patterns over structured and unstructured data. - Cost optimization:
Demonstrated experience reducing unit cost of AI workloads without regressing quality or latency. - AI safety & authorization:
Hands‑on experience operating AI guardrails, scoped tool permissions, and authorization layers for production AI systems.
- Experience training small language models for production use.
- GPU performance tuning (vLLM, Tensor
RT, Triton, or similar). - Prior staff‑level role at a company with a significant AI infra footprint.
- Experience with ontology‑driven systems or knowledge graphs supporting AI applications.
- Contributions to open‑source ML infrastructure or LLM tooling.
- Base pay range: $200,000 – $250,000. Additional benefits and bonuses may apply.
- Regular full‑time employees are eligible for benefits.
At App Folio, we value diversity in backgrounds and perspectives. We are a proud Equal Opportunity Employer and welcome applicants of all races, colors, religions, sexes, sexual orientations, gender identifications, national origins, ages, marital statuses, ancestries, physical or mental disabilities, or veteran status.
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