AI Native Software Engineer
Listed on 2025-12-27
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Software Development
AI Engineer
We Are
A forward-thinking services company at the forefront of AI-native innovation. We partner with enterprise clients to create next-generation, agent-powered workflows engineered to scale in real-world settings. Our engineers embed deeply with customers, moving projects beyond experimentation into operational reality.
You AreAn AI Native Engineer with a strong foundation in building cloud-native solutions and hands-on experience designing and deploying agentic systems, especially for enterprise environments. You’re a critical thinker who thrives in ambiguity, delivering concrete results by designing, building, and running AI agents that augment workflows and scale across modern infrastructure.
Depending On Level, You’Ll Either:- Lead the design and delivery of complex agentic solutions and mentor/coach other engineers or
- Serve as an individual contributor owning key technical areas end to end
- In all cases, you’ll help shape the playbook for how enterprises adopt and scale AI-native engineering.
You’ll embed directly with clients — acting as both technologist and trusted advisor. You’ll partner with stakeholders to define use cases, rapidly prototype, and deploy agentic workflows that are robust, secure, and operational in complex enterprise domains. Often, these will be net-new platforms and systems that need to be stitched together in our clients’ environments alongside our ecosystem partners.
Agent Architecture & Engineering
- Design and build enterprise-ready AI agents incorporating retrieval, orchestration, policy-based routing, tool invocation, evaluation harnesses, and lifecycle observability.
- Implement resilient, testable, and maintainable agentic workflows that can be iterated on quickly.
- Develop and/or extend abstraction layers across AI providers (Anthropic, Google, OpenAI, etc.) to enable seamless integration and multi-provider enablement.
- Contribute to shared libraries, SDKs, and patterns that can be reused across clients.
- Leverage containerization (Kubernetes, Docker), microservices, serverless, event-driven architectures, CI/CD, and observability stacks to deliver scalable AI-native systems.
- Own deployment, monitoring, and troubleshooting for your services in production.
- Tailor and deploy agentic applications across verticals (e.g., finance, healthcare, retail), adapting to domain-specific processes and constraints.
- Work closely with client SMEs to translate business workflows into agentic solutions.
- Participate in and/or lead design workshops, POCs, and code-with sessions to shape data-driven agent workflows with stakeholders, fostering trust and adoption.
- Communicate trade-offs, risks, and recommendations clearly to both technical and non-technical audiences.
- Define and use key metrics, test harnesses, and evaluation plans to measure agent accuracy, latency, safety, and cost effectiveness.
- Iterate rapidly based on data, feedback, and changing requirements.
- Craft reusable patterns, documentation, and best practices that influence internal assets and client roadmaps.
- Contribute to internal communities of practice around AI-native and agentic engineering.
Travel may be required for this role. The amount of travel will vary from 25% to 75% depending on business need and client requirements.
Here’s What You Need- Minimum of 3 years of engineering experience with cloud-native systems (APIs, microservices, containerization, serverless).
- Minimum of 1 year of hands-on experience designing and deploying agentic solutions (agents, orchestration, context engineering, RAG, workflows) in production or near-production environments.
- Minimum of 1 year of experience with modern AI platforms — OpenAI, Claude, Vertex AI, or open-source models — including building or using abstraction layers for multi-provider pipelines.
- Minimum of 3 years programming experience in Python, Java, or equivalent, with familiarity in evaluation tooling, logging, monitoring, and agent observability.
- Minimum of 3 years of experience deploying to production using CI/CD, infrastructure as code (Terraform, Helm),…
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