Applied AI Research Engineer

Netic

$150K — $180K *
Information Technology
Less than 5 years of experience
Job Overview by Ladders

Qualifications

  • 4+ years of experience with ML techniques; fluent in PyTorch or JAX and modern serving frameworks.
  • Proven track record of translating novel ML concepts into impactful products.
  • Comfort with ETL, feature stores, cloud-native infrastructure, and A/B experimentation.
  • Experience working with complex data streams and building training pipelines.
  • Ability to align customer workflows with technical solutions.
  • Proactive mindset with a commitment to high standards and learning from failure.

Responsibilities

  • Track and summarize cutting-edge research in ML, LLMs, multimodal models, and agentic systems.
  • Collaborate with GTM and ops teams to identify impactful ML projects and bottlenecks.
  • Develop and manage the full cycle of targeted ML models, from data curation to deployment.
  • Integrate models into real-time platforms through effective APIs and streaming pipelines.
  • Set a technical roadmap, validating concepts quickly and iterating based on outcomes.

Benefits

  • Focus on cutting-edge technology and real customer impact.
  • Collaborative environment with team-oriented processes.
  • Opportunity to operate independently and take ownership of projects.
  • Culture that emphasizes craftsmanship and high-quality execution.
Full Job Description


As an Applied AI Research Engineer, you'll dive deep into cutting-edge research, understand the business functions we put on autopilot inside-out, and execute targeted ML projects that deliver pure magic.

What You'll Do:
  • Study the frontier: Track frontier work in traditional ML, LLMs, multimodal models, retrieval, and agentic systems-then distill it into ideas we can ship.
  • Identify high-ROI projects: Partner with GTM and ops teams to spot bottlenecks in products; define ML projects that unlock significant leverage for customers.
  • Build targeted models: Own the full cycle-data curation, training, evaluation, and deployment-delivering systems that solve real customer pain points.
  • Productionize solutions: Integrate models into our real-time platform via robust APIs and streaming pipelines, ensuring model performance and guardrails from day one.
  • Self-direct & ship: Operate like a founder-set technical roadmap, validate quickly, and iterate based on real-world results.


What You'll Bring:
  • Deep ML experience: 4+ years with cutting-edge ML techniques; fluent in PyTorch or JAX and modern serving frameworks.
  • Research-to-revenue record: Proof you've taken novel ML concepts from paper  prod with measurable $$ impact or user growth.
  • Full-stack pragmatism: Comfortable with ETL, feature stores, cloud-native infrastructure, and A/B experimentation.
  • Data engineering skills: Experience working with complex, real-world data streams and building reliable training pipelines.
  • Product intuition: Ability to understand customer workflows and translate business needs into technical solutions.
  • Ownership model: You default to action, uphold a high craftsmanship bar, and treat failure modes as learning-rate multipliers.

What brings us together is our commitment to:
  • Live to build
  • Run through walls and win
  • Obsess over customers in each line of code
  • Lose sleep over the "almost perfect"
  • Show internal locus of control
  • Prioritize finesse: refinement of first principles thinking, execution, and craftsmanship


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