Full-Time

Agentic AI Engineer

Xora Portfolio Company

Xora Innovation

Xora Innovation

11-50 employees

Funding AI and deep tech ventures

No salary listed

United States

Hybrid

Work model is on-site or hybrid, set per location.

Bachelor's, Master's

Category
Software Engineering (1)
Required Skills
LLM
Python
Machine Learning
MLflow
LangGraph
Observability

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Requirements
  • A Bachelor's or Master's degree in Computer Science or a related engineering field and at least 5 years of building and shipping production software, with substantial experience building and deploying large language model or agent systems in production.
  • Strong Python skills and sound engineering practices, including asynchronous programming, typing, testing, modular design, and code review, with a record of shipping systems used by others.
  • Hands-on production experience building agentic or large language model systems, including orchestration loops, tool calling, structured outputs, and context and memory management for reliable long-running workflows.
  • Experience working across multiple model providers behind a single abstraction, including routing and fallback, and understanding cost and latency trade-offs.
  • Experience building retrieval systems end to end, including embeddings, chunking, hybrid search, reranking, and vector databases.
  • Experience with large language model evaluation and guardrails, including evaluation sets and harnesses, large language model judge scoring, regression gating, and output-quality and safety checks.
  • Experience instrumenting large language model systems for observability, including tracing model and tool calls, versioning prompts, and using traces to debug and improve real behavior.
  • Ability to own ambiguous systems end to end in a fast-moving early-stage environment.
Responsibilities
  • Build a provider abstraction that allows workflows to call, swap, or add model providers by configuration across commercial application programming interfaces and self-hosted endpoints, with structured-output validation, retries, and cost tracking.
  • Build agent orchestration in which a planning agent dispatches specialized sub-agents in parallel on a stateful framework, with durable checkpoints, conditional branching, and context and memory management for coherent multi-step workflows over long task horizons.
  • Build human-in-the-loop checkpoints so low-confidence or high-stakes steps are routed to a person before an agent proceeds.
  • Wrap existing platform capabilities as typed, registered tools that agents can call, maintaining a clean boundary between the agent layer and underlying systems.
  • Design retrieval end to end, from ingestion, embeddings, and chunking through hybrid search and reranking, and assemble context that grounds each model call.
  • Build the prompt layer with versioned prompts, few-shot sets, and captured reasoning so every change is tracked and every call is inspectable.
  • Expose agents and guardrailed model access as tools behind one integration point consumed by backend services, the frontend, and notebooks.
  • Instrument every model call, tool invocation, and agent run as traced spans with prompt, model, and tool lineage so behavior and cost remain debuggable.
  • Build an evaluation framework with deterministic trace metrics and large language model judge scoring for faithfulness that gates changes and catches regressions before release.
Desired Qualifications
  • Experience with stateful agent-orchestration frameworks such as LangGraph or AutoGen and durable-execution engines such as Temporal for long-running workflows.
  • Experience building Model Context Protocol tools or servers, or similar tool-calling integration layers.
  • Experience with large language model operations and evaluation tooling such as MLflow or Langfuse for tracing, prompt versioning, and evaluation.
  • Experience with human-in-the-loop and interrupt-driven agent patterns for review and control.
  • Experience applying large language models to scientific or technical workflows, grounding reasoning in tool outputs and structured data.
  • Fluency with modern artificial intelligence coding assistants or open-source contributions to artificial intelligence or agent tooling.

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Company Size

11-50

Company Stage

N/A

Total Funding

$1.5B

Headquarters

Singapore, Singapore

Founded

2019

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Simplify Jobs

Simplify's Take

What believers are saying

  • Xora led NeuBird's $19.3 million round on April 8, 2026, reinforcing momentum.
  • Upscale AI raised $200 million in January 2026 with Xora, signaling strong co-investor demand.
  • Goldi tracked five deals in twelve months, showing accelerating deployment into frontier companies.

What critics are saying

  • Xora's brand depends on Temasek capital; any Temasek retrenchment would cripple fundraising.
  • No public layoff or litigation signals exist, but venture returns hinge on few exits.
  • If Bedrock Robotics, Upscale AI, and NeuBird stall, Xora becomes a crowded deep-tech bet.

What makes Xora Innovation unique

  • Temasek-backed Xora targets AI infrastructure, applied AI, and deep tech across essential industries.
  • Eric Rosenblum joined April 8, 2026, adding Silicon Valley access and operator credibility.
  • Portfolio wins like Celestial AI's Marvell acquisition validate Xora's hardware-software crossover thesis.

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Benefits

Hybrid Work Options

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