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AI Engineer (Member of Technical Staff)

Genios AI
Full-time
On-site
San Francisco
About Us We intend to defy the cliches while living them. Change the world working for a scrappy, data-driven, and customer-focused startup that's revolutionizing financial workflows using AI. You will be instrumental in shaping this cutting edge AI product owning features from design to launch. We intend to defy the cliches while living them. Change the world working for a scrappy, data-driven, and customer-focused startup that's revolutionizing financial operations with AI-driven workflow automation. We’re looking for an

Applied AI Engineer

who is first and foremost a strong software engineer, with solid foundations in building production systems and a strong applied AI focus. You will be responsible for building functionalities into the product directly and writing production-grade code that brings advanced AI workflows into real-world use. As an Applied AI Engineer, you’ll focus on making minimum loveable products powered by AI—building scalable, reliable, and user-friendly systems. You’ll work across model pipelines, infrastructure, and product layers, but with a clear emphasis on applied AI delivered in production. This role requires ownership, hands-on coding, and the ability to move fast while balancing robustness and innovation. We have full-time roles available with remote work flexibility, hybrid, or on-site based on your preferences and seniority. Note: This remote position requires monthly travel to the Bay area or Seattle for in person team meetings. Key Responsibilities

Build and scale AI/ML and GenAI pipelines from experimental workflows to production-ready systems. Integrate model training, evaluation, deployment, and monitoring into product workflows Deploy and manage GenAI solutions such as chatbots, RAG applications, and predictive analytics tools. Operationalize LLMs and AI agents, including prompt orchestration, chaining, and fine-tuning. Benchmark models, develop evaluation frameworks, and improve reliability and auditability. Implement observability, monitoring, and rollback mechanisms to ensure secure, scalable deployments. Work across the stack—from backend systems to product SDKs—to deliver AI features directly into user-facing applications. Prototype rapidly, gather feedback, and iterate while keeping scale and maintainability in mind. Own critical product components and take responsibility for delivering robust, production-grade features. Collaborate cross-functionally with data scientists, product managers, and engineers to scope specifications and solve real customer problems. Debug complex issues and perform root cause analysis across model pipelines, infrastructure, and product layers to ensure reliability and continuous improvement. Qualifications

BS or MS in Computer Science, Statistics, or Mathematics, or equivalent experience. Strong software engineering background with proven experience shipping production systems. 3+ years of experience in ML/DL pipelines, deployment, and applied AI solutions. Proficiency in Python or Go with frameworks like TensorFlow, PyTorch, Scikit-Learn, FastAPI, or gRPC. Experience with LLM and AI frameworks such as Langchain, LlamaIndex, Hugging Face Transformers, and OpenAI API. Knowledge of RAG architectures, embeddings, reranking models, and LLM-based dialogue systems. Experience building and scaling backend platforms, APIs, and microservices. Comfortable working full-stack, from model APIs down to user-facing integrations. Have shipped AI features that users actually use; production experience over theoretical knowledge. Track record of building reliable products with strong attention to detail and usability. Autonomous and excited about taking ownership over major initiatives. Frequent user of AI products (Cursor, Claude Code, Copilot, etc.) during the development lifecycle. Perks

Competitive Compensation Unlimited PTO AI Assistants for work (Coding, General Purpose, etc.)

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