Software Engineer II - Full Stack

Posted An Hour Ago
Hiring Remotely in USA
Remote
149K-215K Annually
Junior
Security • Cybersecurity
The Role
Build end-to-end fullstack features for Threat Narrative and Email Details, implementing backend APIs, data models, and React/TypeScript UIs. Integrate GenAI/LLM systems to generate explainable narratives, own SLAs/SLOs and observability, participate in design/code reviews, and collaborate with product and cross-functional partners to improve detection explainability and customer-facing experiences.
Summary Generated by Built In
About the Role

At Abnormal AI, our mission is to protect the world’s largest enterprises from advanced email and collaboration attacks. The Threat Narrative team transforms complex signals from our detection systems into clear, actionable stories that help customers understand the attacks we stop and the value of our platform.

As a Software Engineer, Fullstack on the Threat Narrative team, you will help build the next generation of email-centric narrative experiences across Email Details and Threat Narrative views, with a focus on clearly communicating Abnormal detections to customers. You will work closely with GenAI and LLM-powered systems that distill thousands of low-level detection features and signals into concise, trustworthy explanations that customers can immediately act on. You will implement fullstack features end-to-end, from backend APIs and data contracts through to performant, intuitive UIs in the customer portal and internal tools that surface these explanations in the right context. Your work will directly shape how customers perceive Abnormal’s detection quality and how they reason about threats at scale. This role is ideal for an engineer who enjoys owning well-scoped systems, learning from senior partners, and combining strong engineering fundamentals with product intuition and storytelling.

What you will do 
  • Design and implement fullstack features across Threat Narrative and Email Details surfaces, including customer portal components, internal analyst tools, and QBR-facing outputs, with guidance from senior engineers.
  • Implement and evolve APIs and services that generate enriched narratives from attack data, enrichment signals, and GenAI/LLM agents, following established contracts and patterns.
  • Contribute to data models and explainability contracts that make complex threat decisions more understandable to customers and internal analysts.
  • Write high-quality, well-tested Python/Django and React/Typescript code, focusing on correctness, performance, and maintainability.
  • Participate in owning SLAs/SLOs, observability, and incident response for Threat Narrative and Email Details services by building and improving dashboards, alerts, and runbooks in the areas you own.
  • Collaborate closely with Product, CS, GTM, Threat Intel, Detection, and DS partners to ensure narrative experiences clearly communicate attack context, value, and outcomes for customers.
  • Engage in design and code reviews, learn from more senior engineers, and surface opportunities to simplify, derisk, and improve existing systems.
 Must Haves
  • 2+ years of professional, production-level software engineering experience, with a track record of shipping and operating fullstack web applications in cloud-native environments.
  • Proficiency in Python and Django (or a similar backend framework), and comfort working with Postgres or similar relational databases.
  • Experience building modern frontend applications with React and Typescript, including data-heavy or workflow-centric UIs.
  • Ability to design and work with well-structured APIs and data models for data-intensive applications, with attention to correctness and evolvability.
  • Experience using metrics, logging, and tracing to debug production issues and understand user behavior in at least one prior system.
  • Strong collaboration and communication skills, including working effectively with Product and partner engineering teams to translate requirements into clear technical tasks.
  • Experience with AI development tools.
  • Bachelor’s degree in Computer Science, Information Systems, or a related technical field, or equivalent practical experience.
 Nice to Have 
  • Experience building or integrating LLM/GenAI-powered features (e.g., prompt design, simple agents, or explainability) in production or pre-production systems.
  • Familiarity with cybersecurity data, threat intelligence, or detection systems, especially in the context of email and collaboration security.
  • Exposure to big data and batch processing technologies (e.g., Spark, Databricks, Airflow, Kafka) used to power analytics, narratives, or offline enrichment.
  • Experience collaborating on multi-team initiatives and contributing to shared components, data contracts, or cross-surface UX.

#LI-ML1


Actual compensation will be determined based on several non-discriminatory factors including skills, experience, qualifications, and geographic location.
In addition to base salary, this role may be eligible for bonus or incentive compensation, equity, and a comprehensive benefits package.

Base salary range:
$149,200$214,500 USD

Abnormal AI is an equal opportunity employer. Qualified applicants will receive consideration for employment without regard to race, color, religion, sex, national origin, disability, protected veteran status or other characteristics protected by law. For our EEO policy statement please click here. If you would like more information on your EEO rights under the law, please click here.

Skills Required

  • 2+ years professional, production-level software engineering experience shipping and operating fullstack web applications in cloud-native environments.
  • Proficiency in Python and Django (or similar backend framework) and comfort working with Postgres or similar relational databases.
  • Experience building modern frontend applications with React and TypeScript, including data-heavy or workflow-centric UIs.
  • Ability to design and work with well-structured APIs and data models for data-intensive applications.
  • Experience using metrics, logging, and tracing to debug production issues and understand user behavior.
  • Strong collaboration and communication skills, working with Product and partner engineering teams.
  • Experience with AI development tools.
  • Bachelor's degree in Computer Science, Information Systems, or related technical field, or equivalent practical experience.
  • Experience building or integrating LLM/GenAI-powered features (prompt design, simple agents, or explainability).
  • Familiarity with cybersecurity data, threat intelligence, or detection systems, especially email and collaboration security.
  • Exposure to big data and batch processing technologies (e.g., Spark, Databricks, Airflow, Kafka).
  • Experience collaborating on multi-team initiatives and contributing to shared components, data contracts, or cross-surface UX.

Abnormal Security Compensation & Benefits Highlights

The following summarizes recurring compensation and benefits themes identified from responses generated by popular LLMs to common candidate questions about Abnormal Security and has not been reviewed or approved by Abnormal Security.

  • Fair & Transparent Compensation Pay is considered aggressively benchmarked to leading tech markets with annual reviews, and feedback suggests engineering and sales roles are compensated competitively with strong upside potential.
  • Healthcare Strength Health coverage is portrayed as robust, including employer-paid premiums for employees in prior postings, One Medical access, and globally designed healthcare and parental leave.
  • Leave & Time Off Breadth Time off provisions include flexible/unlimited PTO, company holidays, and paid parental leave that the company positions as globally available.

Abnormal Security Insights

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The Company
HQ: Las Vegas, NV
175 Employees
Year Founded: 2018

What We Do

The Abnormal Security platform protects enterprises from targeted email attacks. Abnormal Behavior Technology (ABX) models the identity of both employees and external senders, profiles relationships and analyzes email content to stop attacks that lead to account takeover, financial damage and organizational mistrust. Though one-click, API-based Office 365 and G Suite integration, Abnormal sets up in minutes and does not disrupt email flow. Abnormal Security was founded in 2018 by CEO Evan Reiser, CTO Sanjay Jeyakumar, Head of Machine Learning Jeshua Bratman, and Founding Engineers Abhijit Bagri and Dmitry Chechik. The team previously built behavioral profiling and machine learning technologies at Twitter, Google and Pinterest that are being applied to solve a problem that costs organizations $1 billion per year, according to the FBI. The Abnormal Security platform stops targeted phishing, business email compromise and account takeover attacks that have never been seen before.

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