Machine Learning Engineer I/II, Applied AI

Lila Sciences

Cambridge (MA)

On-site

USD 116,000 - 170,000

Full time

46 hours ago
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Benefits offered by this job

Equity
Bonus potential
Comprehensive benefits

Job summary

Lila Sciences is seeking Machine Learning Engineers to turn frontier model capabilities into reliable customer workflows. You will train, adapt, and evaluate models, build evaluation loops, and collaborate with AI researchers and software engineers to deploy end-to-end solutions.

The role bridges research and engineering with autonomy, offering the chance to shape production‑quality systems in a fast‑moving environment.

Qualifications

  • Experience building, training, adapting, or evaluating machine learning models.
  • Strong software engineering skills in Python and ML frameworks (PyTorch/JAX/TF).
  • Experience designing experiments, evaluation metrics, or test sets for model performance.

Responsibilities

  • Close the last-mile gap between Lila AI model capabilities and customer-specific scientific workflows.
  • Post-train models using approaches like SFT and RL (DPO, PPO/GRPO) to align behavior with requirements.
  • Build evaluation loops that measure model quality, reliability, and customer fit.
  • Design experiments to improve model performance across use cases.
  • Feed customer learnings, data signals, and results back into model improvement cycles.
  • Partner with AI researchers to translate improvements into usable capabilities.
  • Work with Software to integrate model behavior into end-to-end product workflows.
  • Debug model failures using traces, evaluations, and customer context.

Skills

Python
PyTorch
JAX
TensorFlow
Model training
Experiment design

Tools

Git
Docker

Job description

Cambridge, MA USA; San Francisco, CA USA

We are growing our Applied AI org and seeking Machine Learning Engineers with expertise in model training, evaluation, and production-oriented ML systems. You’ll work on improving Lila’s AI models for customer‑specific scientific needs, with a focus on turning frontier model capabilities into reliable workflows that can be evaluated, iterated, and used in real customer contexts. This is a rare chance to join an early team with the autonomy, flexibility, and compute to tackle frontier science problems.

Applied AI sits at the intersection of AI Research, model engineering, and product deployment. The team partners closely with AI Researchers and Software teams to adapt Lila models to customer workflows, improve model quality through experimentation, and ensure model behavior works well end to end inside the application.

This role is ideal for someone who can bridge research and engineering: training or adapting models, building evaluation loops, debugging model behavior, and collaborating across AI and Software to move promising capabilities into production‑quality systems.

What You’ll Be Building

  • Close the last‑mile gap between Lila AI model capabilities and customer‑specific scientific workflows.
  • Post‑train models using approaches such as SFT and RL (DPO, PPO/GRPO) to align model behavior with customer‑specific requirements and feedback.
  • Build evaluation loops that measure model quality, reliability, and customer fit.
  • Design experiments to improve model performance across applied customer use cases.
  • Feed customer learnings, data signals, and evaluation results back into the Lila AI model improvement cycles.
  • Partner with AI researchers to translate model improvements into usable capabilities.
  • Work with Software to integrate model behavior into end‑to‑end product workflows.
  • Debug model failures using traces, evaluations, customer context, and scientific feedback.
  • Build reusable tooling for model adaptation, evaluation, and deployment workflows.

What You’ll Need to Succeed

  • Experience building, training, adapting, or evaluating machine learning models.
  • Strong software engineering skills in Python and modern ML frameworks such as PyTorch, JAX, or TensorFlow.
  • Experience designing experiments, evaluation metrics, or test sets for model performance.
  • Ability to debug model behavior using data, traces, logs, and qualitative feedback.
  • Experience working across research and engineering teams to move ML capabilities into usable systems.
  • Familiarity with large language models, multi‑modal models, or agentic AI systems.
  • Clear communication skills for translating customer needs into technical model improvements.

Bonus Points For

  • Experience adapting models for customer‑facing or production workflows.
  • Experience with scientific, technical, or data‑intensive customer use cases.
  • Experience building evaluation harnesses, model monitoring, or quality dashboards.
  • Familiarity with retrieval‑augmented generation, tool use, or agentic workflows.
  • Experience with RL post‑training, such as RLHF, GRPO, or tool‑augmented RL.
  • Experience training MoE architectures.
  • Experience working with product or customer‑facing teams to translate needs into ML improvements.

Compensation

We offer competitive base compensation with bonus potential and generous early‑stage equity. Your final offer will reflect your background, expertise, and expected impact.

U.S. Benefits. Full‑time U.S. employees receive a comprehensive benefits program including medical, dental, and vision coverage; employer‑paid life and disability insurance; flexible time off with generous company wide holidays; paid parental leave; an educational assistance program; commuter benefits, including bike share memberships for office based employees; and a company subsidized lunch program.

International Benefits. Full‑time employees outside the U.S. receive a comprehensive benefits program tailored to their region. USD salary ranges apply only to U.S.-based positions; international salaries are set to local market.

Expected Base Salary Range

$116,000 – $170,000 USD

About LILA

Lila Sciences is building Scientific Superintelligence™ to solve humankind's greatest challenges. We believe science is the most inspiring frontier for AI. Rather than hard‑coding expert knowledge into tools, LILA builds systems that can learn for themselves.

LILA combines advanced AI models with proprietary AI Science Factory™ instruments into an operating system for science that executes the entire scientific method autonomously, accelerating discovery at unprecedented speed, scale, and impact across medicine, materials, and energy. Learn more at www.lila.ai.

Guided by our core values of truth, trust, curiosity, grit, and velocity, we move with startup speed while tackling problems of historic importance. If this sounds like an environment you’d love to work in, even if you don’t meet every qualification listed above, we encourage you to apply.

Lila Sciences iscommitted to equal employment opportunityregardless of race, color, ancestry, religion, sex, national origin, sexual orientation, age, citizenship, marital status, disability, gender identity or Veteran status.

Information you provide during your application process will be handled in accordance with our Candidate Privacy Policy .

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