Senior ML Engineer Jobs in Atlanta, GA
Senior ML Engineer jobs in Atlanta are in high demand, with openings concentrated in Midtown, Buckhead, and the Tech Square corridor across fintech, healthcare technology, and enterprise software. Employers currently hiring include The Home Depot, AIG, and Capgemini. See the openings below and apply to the ones that match your experience.
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Hi, We're AppFolio
We're innovators, changemakers, and collaborators. We're more than just a software company — we're building the AI-native platform where the real estate industry comes to do business. We're transforming property management: how properties are leased, how residents find their homes, and how intelligence flows across an entire portfolio.
Realm-X is AppFolio's AI-native platform powering this transformation. Within it, Realm-X Leasing Performer is an autonomous AI agent that handles the end-to-end leasing lifecycle — lead management, tour scheduling, follow-up, application processing, etc. — on behalf of property managers and leasing teams. It's one of AppFolio's most ambitious bets on autonomous AI, and it needs ML engineering worthy of that ambition.
Who We Are Looking For
We're hiring a Staff Machine Learning Engineer to own the ML strategy and execution that makes the Realm-X Leasing Performer production-grade, observable, and continuously improving. You'll sit at the intersection of applied ML, agent systems, and leasing domain expertise — working directly with Leasing Engineering, Voice & Agents, and Research ML to translate prototypes into systems our customers can depend on every day.
This isn't a platform-only role. You'll be close enough to the product to shape how the Leasing Performer reasons, acts, and learns — and close enough to infrastructure to make sure it's reliable, cost-efficient, and safe at scale.
Your Impact
- Own the ML Strategy for Leasing: Define and drive the machine learning roadmap across Leasing products — identifying where ML creates the most leverage, making the right model and architecture bets, and working closely with Product and Engineering leadership to align the team around a coherent technical vision that reflects real customer outcomes.
- Drive the Development & Architecture for Autonomous AI Agents: Be the ML lead for AppFolio's autonomous leasing agent — shaping how it communicates with prospective tenants and helps streamline leasing operations. You'll own the model quality, evaluation framework, and continuous improvement loop that makes the Performer better over time.
- Translate Research into Product: Partner with Voice & Agents and Research ML to evaluate new capabilities — fine-tuning approaches, retrieval strategies, agentic patterns — and make the call on what's ready to ship and what needs more hardening before it reaches customers.
- Drive Model Quality and Evaluation: Build the evaluation and experimentation infrastructure that lets the Leasing team ship ML changes with confidence — defining what "better" looks like for leasing-specific tasks and owning the metrics that reflect real customer outcomes.
- Set the ML Bar for Leasing Engineering: Establish the patterns, standards, and practices that the broader Leasing Engineering team follows when integrating ML — from prompt engineering and RAG to fine-tuning and model selection. Be the person the team comes to when the ML question is hard.
- Operate with Production Discipline: Ensure that ML systems powering the Leasing Performer meet the reliability bar that production SaaS demands — SLOs, observability, cost discipline, and a clear on-call posture. You don't have to build all of it, but you own the outcomes.
Qualifications
- Systems thinker: You think in terms of platforms and long-term leverage, not just features. You understand how ML infrastructure decisions compound over time.
- Production builder: You've built and scaled ML infrastructure in production with meaningful business impact — and you treat it like any other production system.
- Domain curiosity: You take time to understand the business workflows your systems serve — in this case, leasing — and use that understanding to make better technical bets.
- Ambiguity: You operate effectively in high ambiguity, turning unclear infra problems into clear direction.
- Owner-operator: You take ownership with a founder mindset, act with urgency, and focus on outcomes.
- Collaboration: You are humble, collaborative, and low-ego — you elevate those around you and work fluidly across ML, product, and engineering.
- Reliability mindset: You treat ML infra like any other production system: SLOs, on-call, observability, postmortems.
- Sustainability: You value work-life balance as a foundation for sustained high performance.
Must Have
- ML Development at scale: Has built and supported production ML systems at scale.
- Architectural Leadership: You have experience leading architectural discussions, defining system design, and guiding technical decision-making.
- Inference & Training: Has trained or fine-tuned language models end-to-end; comfortable with deep learning, evaluation, and inference.
- Training capability: Has trained or fine-tuned language models end-to-end; comfortable with deep learning, evaluation, and inference.
- RAG & agents: Hands-on experience with LangChain / LangGraph and modern RAG patterns over structured and unstructured data.
- AI safety & authorization: Hands-on experience operating AI guardrails, scoped tool permissions, and authorization layers for production AI systems — especially in agentic contexts.
Nice to Have
- Experience building ML systems for conversational AI, leasing, or CRM-adjacent workflows.
- GPU performance tuning (vLLM, TensorRT, Triton, or similar).
- Experience with ontology-driven systems or knowledge graphs supporting AI applications.
- Familiarity with real estate, property management, or leasing workflows.
- Contributions to open-source ML infrastructure or LLM tooling.
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Find Senior ML Engineer JobsSenior ML Engineer Job Market in Atlanta
Who's Hiring
- The Home Depot26

- AIG7

- Capgemini5

- Deloitte3

- Amazon Web Services3

Top Industries Hiring
- Retail26
- Technology & Software20
- Construction & Real Estate11
- Insurance10
- Consulting & Professional Services6
Senior ML Engineer Jobs in Atlanta: Frequently Asked Questions
How do I get a senior ml engineer job in Atlanta?
Focus your search on Atlanta's fintech corridor, health tech companies headquartered near Midtown and Buckhead, and the enterprise software firms clustered around Tech Square and Peachtree Road. Candidates with experience in production ML systems, MLOps pipelines, and cloud platforms like AWS or GCP have a clear edge here. Atlanta employers also respond well to demonstrated contributions to real-world model deployment rather than research-only backgrounds.
Which companies hire senior ml engineers in Atlanta?
Companies currently hiring senior ml engineers in Atlanta include The Home Depot, AIG, and Capgemini, per current listings on Migrate Mate as of June 2026. Atlanta's employer mix skews toward large financial services firms, health tech platforms, and mid-size SaaS companies that have established engineering hubs in the city.
Are there remote senior ml engineer jobs in Atlanta?
Yes, and senior ml engineer roles are well-suited to remote work given the desk-based, analytical nature of the work. About 19% of senior ml engineer openings tied to Atlanta are remote or hybrid as of June 2026, reflecting how broadly distributed ML teams have become. Model development and experimentation work tends to be the most remote-friendly, while roles tied to real-time infrastructure or on-site data teams are more likely to require a Midtown or Buckhead presence.
How can I get a senior ml engineer job in Atlanta with little or no experience?
The most realistic entry path in Atlanta is through a data analyst or machine learning engineer associate role at one of the city's fintech or health tech firms, which often grow their own ML talent internally. Atlanta's startup scene around Ponce City Market and the Georgia Tech Research Institute also offer project-based exposure that builds a deployable portfolio. Completing a relevant certification in cloud ML tools and contributing to open-source projects strengthens applications to Atlanta employers who hire at the junior-to-mid level before promoting to senior roles.
Which industries hire the most senior ml engineers in Atlanta?
The sectors hiring the most senior ml engineers in Atlanta are Retail, Technology & Software, and Construction & Real Estate, based on current listings on Migrate Mate as of June 2026. Atlanta's deep roots in payment processing, healthcare administration, and logistics technology drive consistent demand for senior ML talent across those verticals.
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