Date Posted: 03/20/2024 Req ID:30501 Faculty/Division: Faculty of Arts & Science Department: Acceleration Consortium Campus: St. George (Downtown Toronto) Description: The Acceleration Consortium (AC) at the University of Toronto (U of T) is leading a transformative shift in scientific discovery that will accelerate technology development and commercialization. The AC is a global community of academia, industry, and government that leverages the power of artificial intelligence (AI), robotics, materials sciences, and high-throughput chemistry to create self-driving laboratories (SDLs), also called materials acceleration platforms (MAPs). These autonomous labs rapidly design materials and molecules needed for a sustainable, healthy, and resilient future, with applications ranging from renewable energy and consumer electronics to drugs. AC Staff Scientists will advance the infield of AI-driven autonomous discovery and develop the materials and molecules required to address society\xe2\x80\x99s largest challenges, such as climate change, water pollution, and future pandemics. The Acceleration Consortium received a $200M Canadian First Research Excellence Grant for seven years to develop self-driving labs for chemistry and materials, the largest ever grant to a Canadian University. This grant will provide the Acceleration Consortium with seven years of funding to execute its vision. The AC is developing seven advanced SDLs. These include:
Inorganic solid-state materials,
Organic small molecules for advanced materials,
Drug discovery with chemical probes,
Polymers for materials science and biological applications,
Formulations for pharmaceuticals, consumer products, and coatings,
Biocompatibility (organ-on-a-chip), and
Synthetic scale-up of materials and molecules.
We are hiring staff scientists to develop the hardware and software needs for each of these SDLs and to conduct research programs levering these labs for materials and molecule discovery. The Staff Scientists involved in the AC are highly skilled and experienced researchers who will work independently to develop the AI and automation technologies required to build robust and scalable self-driving labs, manage these SDLs, and design and implement research programs (based on the direction of the AC\xe2\x80\x99s scientific leadership team) that leverage the SDL platforms to discover materials and molecules. This role will report to the Academic Director and Executive Director of the Acceleration Consortium. We are looking for individuals with diverse backgrounds and expertise to support the development of Self-Driving Labs and materials discovery. The Staff Scientists will work with a diverse team of leading experts at the U of T, including: Al\xc3\xa0n Aspuru-Guzik, Christine Allen, Cheryl Arrowsmith, Frank Gu, Jason Hattrick-Simpers, Anatole von Lilienfeld, Milica Radisic, Sophie Rousseaux, Florian Shkurti, Dwight Seferos, Dave Sinton, and Helen Tran. The background of the team hired will cover the following topics. Candidates that have experience in several or as many of the areas below will be prioritized: Artificial Intelligence / Automation
High-throughput materials synthesis and processing (polymers, inorganic and organic molecules (including lipids))
Nanomaterial synthesis and characterization
Polymer physics
Structural, electrochemical, and microstructural characterization of materials and molecules
Screening electrocatalytic conversion
Analytical chemistry and separation method development
Chemical reactions and analytics
GLP formulation skills
Electrochemistry
Organic synthesis methodology development
Drug Discovery / Medicinal Chemistry
Medicinal chemistry
Protein biophysics/biochemistry
Mass spectrometry
Controlled release properties and processes
Organ on a chip / Organoid
Pluripotent stem cell differentiation
Molecular biology
Toxicology pharmacology
The components and duties of the work include:
SDL and Automation Development
Working with the AC community, including faculty and partners, to determine the required capabilities of the SDLs to be built. Developing SDL plans to meet user requirements and designing novel instruments for automated material synthesis and characterization. Developing customized hardware and Python software packages to build SDLs. Selecting, procurement, and installation of the equipment required for SDLs.
Research Direction
Working independently to develop research programs that leverage the AC\xe2\x80\x99s SDLs and supports the research objectives of AC faculty and industry partners. Using SDLs to synthesize and characterize large quantities of candidate molecules, calibrating theoretical models with experimental data, predicting promising candidates with computational tools and machine learning algorithms, and elucidating structure-property relationships of emerging molecules, polymers, solid-state materials, formulations, etc. Tasks include:
Managing the research and development projects of AC\xe2\x80\x99s industry partners when implemented in AC labs.
Developing plans supporting research collaborations and estimating financial resources required for programs and/or projects.
Working with Product Managers to ensure research outcomes meet partner requirements.
Promoting AC\xe2\x80\x99s research capacity, including delivering presentations at conferences.
Collaboration in preparing and submitting research proposals to granting agencies and progress reporting.
Preparing manuscripts for submission to peer review publications/journals and stewarding them through the process.
Other
Supporting consulting services related to the application of SDLs for materials discovery for the AC\xe2\x80\x99s partners.
Support research-focused events such as Annual Symposium
MINIMUM QUALIFICATIONS: Education
Ph.D. in Physical/Material Chemistry or related discipline
Experience
Five (5) to 10 years of experience in research and development, preferably with significant experience in Physical, Material, Medicinal, and/or Analytical Artificial Intelligence for Chemistry.
Experience working with industry partners and on industry lead research and development projects.
Expert knowledge of AI and automation and experience with the development of Self-driving Laboratories.
Experience presenting research at academic conferences
Demonstrated track record of academic and/or research excellence.
Skills
Strong in communicating effectively and efficiently in oral and written English
Collegial in working with team members and collaborators
Ability to work independently.
Other
Must have a strong publication record
Demonstrated success in writing and preparing manuscripts, presentations, reports, briefs, and scientific abstracts and manuscripts for peer-reviewed journals.
Closing Date: 07/31/2024, 11:59PM ET Employee Group: Research Associate Appointment Type: Grant - Continuing Schedule: Full-Time Pay Scale Group & Hiring Zone: A maximum salary of $150,000 (salary will be assessed based on skills and experience) Job Category: Research Administration & Teaching
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