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Cyber Sierra in Singapore is seeking a Forward Deployed Engineer to enable deployments in air-gapped and regulated environments, writing code and owning the evaluation harness.
You will map enterprise workflows into agentic systems, design pipelines with tool-calling and document understanding, and own metrics and CI thresholds to ensure production readiness.
Deployments span on-prem, air-gapped, and government clouds, with governance documentation and roadmap feedback shaping the platform.
Cyber Sierra makes security compliance easy for enterprises using its AI enabled platform in driving continuous controls monitoring, third party risk management and governance. Our People are of high integrity, value good work ethics, and mission-focused.
You are a self-starter who can roll up your sleeves and hustle. You are driven to achieve the correct result through smart work and integrity. You are a motivated individual, ready to build from scratch and grow the impact of your work positively for users globally. You are not driven by hierarchy, your drive lies in your curiosity and pushing boundaries of technology.
Cyber Sierra is a mission-driven organization, with the aim to help enterprises, globally, to conquer new age cyber risks and compliance needs. In the process, Cyber Sierra seeks to build the best cyber experiences for professionals. If you want to work with like-minded people and be part of a movement then come speak to us at join@cybersierra.co.
Our highest-value deployments do not look like a SaaS signup. They look like an air-gapped environment inside a regulated bank, a government cloud tenancy where nothing can leave the network, or a security team that needs our AI's reasoning to hold up under a formal governance review. As a Forward Deployed Engineer, you are the person who makes those deployments work and build sharp insights that grow the technical relationship for better performance. You write the code, you own the evaluation harness, and you are accountable for whether the system works in the customer's environment.
Agentic architectures. You have built and debugged more than a chat wrapper. You can reason about when a single-agent loop is the right shape and when the problem needs orchestration across several agents, and explain your reasoning. You understand context engineering, tool design, retrieval and document-understanding pipelines, memory and state management, and common failure modes such as loop divergence, context degradation over long runs and silent tool errors.
Eval-driven development. You treat evaluation as the development method and not a QA phase at the end. You have practical experience building offline eval harnesses, curating golden sets, working with reference-based and LLM-as-judge metrics such as RAGAS or equivalents, setting and defending CI thresholds, and instrumenting production traces to catch what offline evals miss. You understand the gap between a benchmark number and a claim that will survive a customer's technical reviewer.
Local and air-gapped deployments. Hands-on experience with self-hosted inference using vLLM, Ollama or similar, quantisation and its accuracy trade-offs, containerised deployment on Kubernetes, and self-hostable tracing and observability tooling. You are comfortable working somewhere with no outbound network and no managed services to fall back on.
Engineering fundamentals. Strong production Python or TypeScript, comfortable across the stack and into infrastructure. You debug from logs and traces.
You can sit in a room with a CISO, an auditor and a platform engineer, build on critical context, and be honest about product limitations as well as opportunities so that all of us can succeed together.