Detection and Response Engineer

Posted Yesterday
Be an Early Applicant
New York, NY, USA
In-Office
150K-270K Annually
Mid level
Machine Learning • Generative AI
The Role
Design and build high-fidelity detections, lead incident investigations and response automation, develop security tooling and telemetry, and partner with engineering teams to improve platform observability and resilience, leveraging AI/LLMs where useful.
Summary Generated by Built In
About Us:

AI needs a new infrastructure layer. We're building it at Modal.

Every era of computing brought new workloads that previous infrastructure couldn't support: mainframes, databases, and the cloud. Each time, the company that rebuilt the layer underneath defined the decade. AI is no different, except it touches everything instead of one slice, and the window to build the layer underneath it is open right now.

Our customers include category-defining companies like Lovable, Ramp, Cognition, DoorDash, and Suno. They rely on Modal for instant GPU access, sub-second container starts, and native storage, so it's simple to serve low-latency inference, fine-tune models, and access production-ready sandboxes at scale.

We recently raised a $355M Series C at a $4.65B valuation, led by General Catalyst and Redpoint Ventures. We've crossed $300M+ ARR and grown fivefold since September.

Our team includes creators of popular open-source projects (e.g.,Seaborn,Luigi), academic researchers, international olympiad medalists, and experienced engineering and product leaders with decades of experience.

The Role:

We're looking for a Detection & Response Engineer to build the systems that help us identify, investigate, and respond to threats across our platform.

This is an engineering role focused on automation. You'll build detections, investigation tooling, and response capabilities that scale with our infrastructure, using AI where it meaningfully improves signal, investigation speed, and operational effectiveness.

You'll work closely with infrastructure, platform, and security engineers to ensure every incident makes the platform more resilient.

What You'll Work On:Detection Engineering
  • Design and build high-fidelity detections for attacks, abuse, and anomalous behavior across our infrastructure and production systems

  • Continuously improve detections based on telemetry, threat intelligence, and lessons learned from incidents

  • Improve visibility across cloud infrastructure, containers, identity systems, and production services

Incident Response
  • Lead or participate in investigations spanning production infrastructure, cloud environments, and internal systems

  • Build playbooks and automation that reduce investigation time and improve response consistency

  • Drive post-incident improvements that eliminate entire classes of future incidents

Security Tooling & Automation
  • Build internal tooling that improves detection, investigation, and response workflows

  • Leverage LLMs to automate repetitive analysis, accelerate investigations, and surface actionable insights from security telemetry

  • Improve the collection, quality, and usability of security telemetry across the platform

Engineering Partnership
  • Partner with engineering teams to ensure new systems are observable and secure by default

  • Help teams instrument services with the telemetry needed for effective detection and response

  • Drive security improvements that make the platform easier to defend over time

What We're Looking For:
  • Experience in detection engineering, incident response, security engineering, or software engineering with a strong security focus

  • Strong software engineering skills with experience building production systems

  • Experience investigating security incidents in cloud-native or distributed environments

  • Familiarity with modern cloud infrastructure, Kubernetes, Linux, and networking

  • Experience building detections using logs, telemetry, behavioral signals, or large-scale event data

  • Strong SQL skills for investigating security events and developing detections

  • Interest in applying AI and LLMs to detection, investigation, and response, including understanding emerging threats involving AI-powered systems

  • Strong written and verbal communication skills

Preferred Qualifications:
  • Experience building AI- or LLM-powered security tooling

  • Experience with SIEM, SOAR, or EDR platforms

  • Experience with Kubernetes security or large-scale cloud infrastructure

  • Experience with threat hunting, malware analysis, or digital forensics

  • Experience contributing to security operations in a high-growth engineering organization

Skills Required

  • Experience in detection engineering, incident response, security engineering, or software engineering with strong security focus
  • Strong software engineering skills with experience building production systems
  • Experience investigating security incidents in cloud-native or distributed environments
  • Familiarity with modern cloud infrastructure, Kubernetes, Linux, and networking
  • Experience building detections using logs, telemetry, behavioral signals, or large-scale event data
  • Strong SQL skills for investigating security events and developing detections
  • Interest in applying AI and LLMs to detection, investigation, and response
  • Strong written and verbal communication skills
  • Experience building AI- or LLM-powered security tooling
  • Experience with SIEM, SOAR, or EDR platforms
  • Experience with Kubernetes security or large-scale cloud infrastructure
  • Experience with threat hunting, malware analysis, or digital forensics
  • Experience contributing to security operations in a high-growth engineering organization
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The Company
HQ: San Francisco, California
50 Employees

What We Do

Deploy generative AI models, large-scale batch jobs, job queues, and more on Modal's platform. We help data science and machine learning teams accelerate development, reduce costs, and effortlessly scale workloads across thousands of CPUs and GPUs. Our pay-per-use model ensures you're billed only for actual compute time, down to the CPU cycle. No more wasted resources or idle costs—just efficient, scalable computing power when you need it.

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