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Helix

AI/ML Scientist

Posted 8 Days Ago
Remote or Hybrid
Hiring Remotely in Canada
Mid level
Remote or Hybrid
Hiring Remotely in Canada
Mid level
Develop and evaluate machine learning and generative AI models using linked genomic and clinical data. Build LLM agentic systems, clinical variant interpretation pipelines, genomic representations, and reliable evaluation workflows. Investigate healthcare data quality, present findings, collaborate with bioinformatics and clinical teams, and contribute to scientific publications. The role requires strong Python, statistics, experimentation, cloud GPU, and software engineering practices, plus interest in biology and precision medicine.
The summary above was generated by AI
Who We Are & What We Do 
At Helix, our mission is simple: to help everyone improve their lives through their DNA.

Ready to make a real-world impact with your skills? At Helix, we're transforming healthcare by making genomics a standard of care. We partner with health systems and life science companies to accelerate the integration of genomic data into clinical practice. Join us in building a future where healthcare is personalized, proactive, and powered by genomics. 

What is special about this role?

Helix maintains one of the largest linked genomic and clinical datasets in the United States. Helix's Data Science & AI team innovates and develops state-of-the-art models that leverage this clinicogenomic dataset, for example, germline genomes linked to longitudinal clinical records, to better understand and predict a patient's journey, taking precision medicine to a new level.

You will take ownership of impactful work early on; your results will be influential, and you will collaborate closely with domain experts. You will have direct access to data that most professionals in this field only read about, along with the opportunity to develop a deep understanding of genomic and clinical data alongside senior experts who have dedicated their careers to this work.

Work you would touch in the first year:

  • Training and evaluating generative models on longitudinal clinical records fused with variant-level germline genomics, to forecast disease onset and patient trajectory
  • Building and measuring LLM agentic solutions that pull structured findings out of clinical text and the published literature
  • Contributing to our multi-agent pipeline for clinical variant interpretation, which is in production today and used by our clinical genomics team on every uncurated variant
  • Feature and representation work on genomic data: turning variant and gene-level information into something a model can actually use
  • Running experiments carefully enough to ensure we can trust the results, which primarily means designing the comparison correctly before launching the job.

As an AI/ML Scientist, you will:

  • Own well-scoped pieces of a larger modeling effort: implement, train, evaluate, and report
  • Write experiment code that colleagues on the team can read, rerun, and trust
  • Build and maintain evaluation pipelines, and be honest about what they do and do not measure
  • Investigate data quality issues. In healthcare data, these are not a distraction from modeling work; they are a necessity
  • Present your results to the team and leadership, including the ones that did not work, and have opportunities to represent the work externally over time
  • Collaborate as the AI/ML voice across bioinformatics, clinical, and engineering stakeholders
  • Draft scientific writeups and internal summaries of the team's findings, and carry results through to papers or conference presentations

About you:

  • MS or PhD in machine learning, computer science, statistics, computational biology, bioinformatics, or a related quantitative field, or equivalent experience
  • 2 to 5 years of applied machine learning experience beyond your degree. Strong PhD work counts
  • Solid Python skills. You can write a training loop, read someone else's, and debug it when the loss goes flat
  • You get leverage out of AI tools and coding assistants, and you know when to trust their output and when to check it
  • Comfortable with the practical parts: git, containers, running jobs on cloud GPUs, tracking experiments
  • Working knowledge of statistics: you know what a train/test leak is, why a baseline matters, and when a difference between two numbers is not a difference
  • Genuine interest in biology and the clinical problem. You do not need to arrive knowing genomics, but you do need to want to learn it
  • You are comfortable saying "I do not know yet"

Pluses:

  • Any exposure to healthcare, genomics, or proteomics data: EHRs, claims, sequencing, imaging, registries
  • Coursework or projects in computational biology, statistical genetics, or biomedical NLP
  • Experience with LLM APIs, fine-tuning, or agent frameworks, especially where you had to measure whether the thing worked
  • Experience with large-scale data tooling (Spark, Dask, Ray, or similar) or with SQL on genuinely large tables
  • Familiarity with healthcare data standards (OMOP/CDM)
  • Familiarity with variant interpretation and classification guidelines (ACMG/AMP) or clinical genetics more broadly
  • Public code, a paper, or a technical writeup: something we can read that shows how you think
  • PyTorch, Lightning, AWS SageMaker

Expected Interview Process:
1) Recruiter Screen 2) Manager Screen 3) Tech Screens 4) Final Loop 5) Offer 

Expected Pay For This Role:
There are 3 distinct parts to your Helix offer: 1) Base Salary 2) Annual Bonus 3) Equity 
  • Expected Helix Base: $97,000 - $122,500
  • Expected Helix Discretionary Annual Bonus: 10% of your annual salary
  • Equity: We offer generous equity at Helix. If you receive a Helix offer your recruiter will book dedicated time with you to educate you on our equity model.

Aside from working alongside brilliant, dedicated, passionate, down-to-earth, curious, warm, and thoughtful people, we also provide great benefits:
  • Comprehensive Health Insurance with Date of Hire eligibility 
  • 12 weeks Helix Paid Parental Leave option 
  • Comprehensive Well-Being Benefits 
  • Flexible PTO
  • Remote options for many roles and a home office stipend 

What To Expect During Your First 90 days:
  • First 30 days: you’ll spend time learning the Helix way, completing training and onboarding for your roles, and getting introduced to your team and relevant stakeholders. You’ll also gain a deeper understanding of our customers, our products, the impact we make in the lives of our communities, and how to thrive at Helix through participation in Helix U.
  • Day 30 - 60: you’ll spend time contributing to projects, deeply familiarizing yourself with team and company processes, and developing a deeper understanding of Helix’s products, services and capabilities. 
  • Day 60 - 90: you’ll build your OKRs with your manager, start to take ownership of projects and initiatives on your team, and begin to demonstrate your impact on the Helix mission.

To learn how Helix collects, uses, and protects your personal information during the recruitment process, please review our Privacy Notice.

Helix is proud to be an equal opportunity employer, and committed to providing employment opportunities regardless of race, religious creed, color, national origin, ancestry, physical disability, mental disability, medical condition, genetic information, marital status, sex, gender, gender identity, gender expression, pregnancy, childbirth and breastfeeding, age, sexual orientation, military or veteran status, or any other protected classification, in accordance with applicable federal, state, and local laws.

 #LI-Remote
Compensation
The base pay range for this role is CA$97,000 – CA$122,500 per year.

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